{"id":24460,"date":"2026-03-11T21:44:12","date_gmt":"2026-03-11T20:44:12","guid":{"rendered":"https:\/\/www.geowiss.uni-mainz.de\/institut-fuer-geowissenschaften\/palaeontologie\/forschungsprofil-schoene\/"},"modified":"2026-05-19T14:45:13","modified_gmt":"2026-05-19T12:45:13","slug":"forschungsprofil-schoene","status":"publish","type":"page","link":"https:\/\/www.geowiss.uni-mainz.de\/en\/institut-fuer-geowissenschaften\/palaeontologie\/forschungsprofil-schoene\/","title":{"rendered":"Research Profile Sch\u00f6ne"},"content":{"rendered":"<jgu-base-heading react-props=\"{\n    &quot;index&quot;: &quot;Head of the Paleontology Research Group&quot;,\n    &quot;tags&quot;: {\n        &quot;htmlTag&quot;: &quot;h2&quot;,\n        &quot;classTag&quot;: &quot;&quot;,\n        &quot;tag&quot;: &quot;h2&quot;\n    },\n    &quot;heading&quot;: &quot;Univ.-Prof. Dr. Bernd Sch\\u00f6ne&quot;,\n    &quot;textAlign&quot;: &quot;left&quot;,\n    &quot;anchor&quot;: &quot;&quot;,\n    &quot;color&quot;: &quot;red&quot;\n}\"><\/jgu-base-heading>\n\n<div class=\"wp-block-columns is-layout-flex wp-container-core-columns-is-layout-8f761849 wp-block-columns-is-layout-flex\">\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow\" style=\"flex-basis:33.33%\"><jgu-base-image react-props=\"{\n    &quot;image&quot;: {\n        &quot;url&quot;: &quot;https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene.jpg&quot;,\n        &quot;id&quot;: 11857,\n        &quot;title&quot;: &quot;Bernd Sch\\u00f6ne&quot;,\n        &quot;width&quot;: 1210,\n        &quot;height&quot;: 1570,\n        &quot;srcset&quot;: &quot;https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene.jpg 1210w, https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene-231x300.jpg 231w, https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene-789x1024.jpg 789w, https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene-768x996.jpg 768w, https:\\\/\\\/cms.zdv.uni-mainz.de\\\/fb09-geowissenschaften\\\/wp-content\\\/uploads\\\/sites\\\/789\\\/2026\\\/03\\\/Bernd-Schoene-1184x1536.jpg 1184w&quot;\n    },\n    &quot;align&quot;: &quot;&quot;,\n    &quot;hasLightbox&quot;: false,\n    &quot;caption&quot;: &quot;&quot;,\n    &quot;imgWidth&quot;: 0,\n    &quot;link&quot;: {\n        &quot;url&quot;: &quot;&quot;,\n        &quot;target&quot;: &quot;&quot;,\n        &quot;rel&quot;: &quot;&quot;\n    }\n}\" class=\"align-\">\n    \n<\/jgu-base-image>\n\n<jgu-base-heading react-props=\"{\n    &quot;color&quot;: &quot;default&quot;,\n    &quot;tags&quot;: {\n        &quot;htmlTag&quot;: &quot;h4&quot;,\n        &quot;classTag&quot;: &quot;&quot;,\n        &quot;tag&quot;: &quot;h4&quot;\n    },\n    &quot;heading&quot;: &quot;&lt;br&gt;&lt;strong&gt;Contact&lt;\\\/strong&gt;&quot;,\n    &quot;textAlign&quot;: &quot;left&quot;,\n    &quot;anchor&quot;: &quot;&quot;,\n    &quot;index&quot;: &quot;&quot;\n}\"><\/jgu-base-heading>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">E-Mail: <a href=\"mailto:bschoene@uni-mainz.de\" target=\"_blank\" rel=\"noreferrer noopener\">bernd.schoene@uni-mainz.de<\/a><br\/>Tel.: +49 6131 39 24757<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">Institute of Geosciences<br\/>Johann-Joachim-Becher-Weg 21<br\/>55128 Mainz<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">Faculty of Natural Sciences, 1st Floor<br\/>Room 01-142\/-144<\/p>\n<\/div>\n\n\n\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow\" style=\"flex-basis:66.66%\"><jgu-base-tabs react-props=\"{\n    &quot;stackMobile&quot;: true,\n    &quot;hasAllOpenButton&quot;: false,\n    &quot;initAllClosed&quot;: false,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;selected&quot;: 1,\n    &quot;ratio&quot;: 0,\n    &quot;autoRatio&quot;: true,\n    &quot;onlyOne&quot;: false,\n    &quot;enableSearch&quot;: false,\n    &quot;layout&quot;: {\n        &quot;type&quot;: &quot;flex&quot;,\n        &quot;flexWrap&quot;: &quot;nowrap&quot;,\n        &quot;justifyContent&quot;: &quot;space-between&quot;,\n        &quot;orientation&quot;: &quot;horizontal&quot;\n    }\n}\">\n    \n<jgu-base-tabsitem react-props=\"{\n    &quot;title&quot;: &quot;About&quot;,\n    &quot;slug&quot;: &quot;about&quot;,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;customSlug&quot;: false\n}\">\n    \n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Research<\/strong><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">My research focuses on high-resolution reconstructions of past climates, environments and ecosystems by means of mollusk sclerochronology. During growth, mollusks (bivalves, gastropods etc.) record environmental changes in their shells in the form of variable increment widths (reflecting changes in growth rate), ultrastructure and geochemical properties including (bulk and compound-specific) stable isotopes and trace elements. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">Extremely long-lived bivalves (&gt; 500 years) are of particular interest for long-term paleoclimate studies, specifically in settings for which other annually and better resolved proxy records are not available such as extratropical marine regions. Well-preserved, single fossil shells can therefore open windows into the climatic past. Furthermore, based on similar growth patterns, shells of contemporaneous specimens with overlapping life spans can be combined to form so-called master chronologies (similar to dendrochronology) that cover centuries to millennia and reflect seasonal to multi-decadal environmental dynamics during that time. For example, using numerous live-collected and fossil specimens of Arctica islandica, nearly 1000 year-long master chronologies for the NE Atlantic were constructed. These time-series reflect distinct decadal and multi-decadal oscillations in stable oxygen isotopes and shell growth, and hence ocean temperature and food availability which can be related to the North Atlantic Oscillation, Atlantic Multidecadal Variability and Atlantic Meridional Overturning Circulation. Furthermore, the shell stable carbon isotopes reflect synchronous changes of the carbon isotope signature of seawater dissolved inorganic carbon. The increased use of fossil fuels since the beginning of the industrial revolution, resulting in a shift toward lower carbon isotope values, is also recorded in the shells. Aside from that, \u03b413Cshell and Ba\/Cashell data indicate strong subseasonal to multidecadal variations of the primary production and certain Ba-bearing primary producers, respectively.       <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">Short-lived bivalves can provide details on subseasonal environmental change. For example, by analyzing the daily and fortnightly growth patterns, the date of death of can be determined to the nearest week or so. Such information is of particular interest for archaeologists and anthropologists who are interested in clarifying the seasonal site occupation and subsistence patterns of indigenous peoples.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">My research also addresses the development of new and optimization of existing environmental proxies (temperature, primary production, hypoxia, nitrogen isotope baseline, food web complexity etc.). A major focus is on trace elements, shell ultrastructure and organic compounds (protein amino acid-specific isotope analysis, specifically \u03b4<sup>15<\/sup>N values). Such studies are accompanied by tank experiments during which growth conditions can be manipulated and light shed on biomineralization processes.  <\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><a href=\"https:\/\/www.scopus.com\/authid\/detail.uri?authorId=7003744022\">Scopus<\/a>: h = 51; citations = 8,607 (26 Mar 2026; Author ID: 7003744022)<\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><a href=\"http:\/\/scholar.google.de\/citations?user=Ns4FIc8AAAAJ&amp;hl=en\">Google Scholar<\/a>: h = 61; i10 = 189; citations = 12,118 (26 Mar 2026)<\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><a href=\"https:\/\/research.com\/u\/bernd-r-schone\">Research.com<\/a>: D = 54 ; citations = 9,643; National rank = 142 (26 Mar 2026) <\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><a href=\"https:\/\/orcid.org\/0000-0002-6879-1633\">ORCID: 0000-0002-6879-1633<\/a><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Degrees<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Habilitation \/ <em>Venia legendi<\/em>, Geosciences, University of Frankfurt, Germany, 2004<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Doctorate Degree (rer. nat., PhD), Institute and Museum of Geology and Paleontology, University of G\u00f6ttingen, Germany, 1997 (summa cum laude, with distinction)<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Diploma Degree, Institute and Museum of Geology and Paleontology, University of G\u00f6ttingen, Germany, 1994 (with distinction)<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Current Position<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>University Professor, Head of Paleontology, <strong>University of Mainz<\/strong>, since September 2006<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Head of the Paleontological Collection, <strong>University<\/strong><strong> of Mainz<\/strong>, since September 2006<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Employment History<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Research Associate, Research Group Leader, <strong>University of Frankfurt<\/strong>, 2002\u20132006 (Emmy-Noether Program, DFG German Research Foundation)<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Research Associate (Postdoc, JSPS), Department of Earth and Planetary Science, <strong>University of Tokyo<\/strong>, Japan, 2001\u20132002<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Research Associate (Postdoc, Humboldt Foundation &amp; NSF), Department of Geosciences, <strong>University of Arizona<\/strong>, USA, 1999\u20132001<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Research Associate (Postdoc, DAAD &amp; NATO &amp; SNF), Swiss Federal Institute for Forest, Snow and Landscape Research (<strong>ETH Z\u00fcrich<\/strong>), Birmensdorf\/Zurich, Switzerland, 1998\u20131999<\/li>\n<\/ul>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Research Assistant (DFG) and PhD student (Ev. Studienwerk e.V.), Institute and Museum of Geology and Paleontology, <strong>University of G\u00f6ttingen<\/strong>, Germany, 1994\u20131997<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Memberships<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Pal\u00e4ontologische Gesellschaft (PG)<\/li>\n\n\n\n<li>Society for Sedimentary Geology (SEPM)<\/li>\n\n\n\n<li>American Geophysical Union (AGU)<\/li>\n\n\n\n<li>Subcommission on Devonian Stratigraphy (SDS)<\/li>\n\n\n\n<li>Arbeitskreis Evolutionsbiologie im Deutschen Biologenverband (VBiO)<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Editorial board<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Associate Editor of PALAIOS (since 2006)<\/li>\n\n\n\n<li>Associate Editor of Palaeontology, Palaeogeography, Palaeoclimatology [Palaeo3] (since 2018)<\/li>\n\n\n\n<li>Associate Editor of Nature Scientific Reports (2022)<\/li>\n\n\n\n<li>Guest Editor of Palaeo3 #228 (2005), #373 (2013), #465 (2017), #484 (2017), #570 (2021)<\/li>\n\n\n\n<li>Guest Editor of Estuarine, Coastal and Shelf Science #246 (2021)<\/li>\n\n\n\n<li>Guest Editor or Limnology and Oceanography Letters #11 (2025)<\/li>\n\n\n\n<li>Guest Editor of Ecosystem Health and Sustainability #10+11 (2024-25)<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Organization of International Conferences<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>1<sup>st<\/sup> Intl Sclerochronology Conference (ISC2007), St. Petersburg, FL\/USA, 17\u201321 July 2007; co-organizer<\/li>\n\n\n\n<li>2<sup>nd<\/sup> Intl Sclerochronology Conf. (ISC2010), Mainz, Germany, 24\u201330 July 2010; chair <\/li>\n\n\n\n<li>3<sup>rd<\/sup> Intl Sclerochronology Conf. (ISC2013), Caernarfon, UK, 18\u201322 May 2013; co-organizer <\/li>\n\n\n\n<li>5<sup>th<\/sup> Intl Sclerochronology Conf. (ISC2019), Split, Croatia, 17<a>\u2013<\/a>20 June 2019; co-organizer <\/li>\n\n\n\n<li>1<sup>st<\/sup> Virtual Intl Sclerochronology Conf. (vISC2022), Online, 13\u201315 Sep 2022; advisory board <\/li>\n\n\n\n<li>6<sup>th<\/sup> Intl Sclerochronology Conference (ISC2023), Tokyo, Japan, 22\u201325 Sep 2023; co-organizer<\/li>\n\n\n\n<li>2<sup>nd<\/sup> <em>Tridacna<\/em> Workshop, Mainz, Germany, 6\u201310 Sep 2024; chair<\/li>\n\n\n\n<li>4<sup>th<\/sup> SEACHANGE Annual Meeting, Mainz, Germany, 22\u201327 June 2025; chair<\/li>\n\n\n\n<li>7<sup>th<\/sup> Intl Sclerochronology Conf. (ISC2026), St. John\u2019s, Canada, 5\u20139 May 2026; co-organizer <\/li>\n<\/ul>\n\n\n<\/jgu-base-tabsitem>\n\n<jgu-base-tabsitem react-props=\"{\n    &quot;title&quot;: &quot;Research&quot;,\n    &quot;slug&quot;: &quot;research&quot;,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;customSlug&quot;: false\n}\">\n    \n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Ongoing projects<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Die Grenzen des Fossilberichtes : Analytische und experimentelle Ans\u00e4tze zum Verst\u00e4ndnis der Fossilisation \u2013 Chemische und mineralogische Ver\u00e4nderungen karbonatischer Schalen durch Fossilisationsprozesse \u2013 eine experimentelle Studie (DFG FOR 2685, 2024\u20132026)<\/li>\n\n\n\n<li>SEACHANGE &#8211; Quantifying the impact of major cultural transitions on marine ecosystem functioning and biodiversity (ERC Synergy, 2020\u20132027)<\/li>\n\n\n\n<li>A multi-archive approach to high-resolution paleoclimatic reconstructions in the Red Sea (MPGC, 2024-2027)<\/li>\n\n\n\n<li>Shells of freshwater mussels \u2013 Hydrological archive of streamflow generation processes (DFG, 2026\u20132028)<\/li>\n\n\n\n<li>Collaboration partner in the Emmy-Noether-Project \u201eSEAFRONT \u2013 The Climatic impacts on the Neolithic Dispersal in the Mediterranean\u201c (PI Niklas Hausmann, DFG, 2020\u20132027)<\/li>\n\n\n\n<li>Collaboration partner in the research project \u201eShell material from Ginnerup\u201c (PI Niels N\u00f8rkj\u00e6r Johannsen, Velux Foundation, 2025\u20132026)<\/li>\n\n\n\n<li>Collaboration partner in the research project \u201eBivalveSPEECH \u2013 Bivalve Sclerochronology \u2013 lessons from Past Ecology and Environments for the future Coastal ecosystem Health\u201c (PI Melita Peharda Uljevi\u0107, HRZZ, 2025\u20132027)<\/li>\n<\/ul>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Completed Projects<\/strong><\/p>\n\n\n\n<ul class=\"wp-block-list\">\n<li>Hochaufl\u00f6sende Rekonstruktionen von Klima- und Umweltbedingungen im j\u00fcngsten Holoz\u00e4n aus Variationen in Wachstumsraten und geochemischen Parametern von Muschelschalen (n\u00f6rdlicher Nordatlantischer Sektor) (DFG, Emmy-Noether-Program; 2002\u20132006)<\/li>\n\n\n\n<li>Synthesys project for Sven Baier (EU; 2005)<\/li>\n\n\n\n<li>Climate proxy optimization &#8211; quantifying factors controlling growth, geochemistry and micro\/nanostructural design of bivalve mollusk shells (DFG, Heisenberg Program, 2007\u20132010)<\/li>\n\n\n\n<li>Spatiotemporal high-resolution Holocene climate reconstruction in the North Pacific by means of bivalve sclerochronology (DFG, 2008\u20132011, Heisenberg Program)<\/li>\n\n\n\n<li>Mobility and migration of the Langobards (\u201cUntersuchungen und Kartierung von Sr- und O-Isotopen zur Herkunftsbestimmung ortsfremder Personenverb\u00e4nde w\u00e4hrend des Fr\u00fchen Mittelalters &#8211; Neue Wege in der Langobardenforschung\u201d) (BMBF + IUFF, 2008-2011)<\/li>\n\n\n\n<li>Provenience of the carbonate rocks of the Mainz Cathedral (\u201cMainzer Becken Kalkstein \u2013 Verwendung als Werkstein im Mittelalter\u201d) (2009\u20132010; Institut f\u00fcr Steinkonservierung e.V., Mainz)<\/li>\n\n\n\n<li>Deciphering seasonal to decadal climate variability during the Oligocene: an integrated approach based on bivalve sclerochronology and palynology (DFG, 2011\u20132012)<\/li>\n\n\n\n<li>Continuous Flow \u2013 Isotope Ratio Mass Spectrometer (CF-IRMS) (DFG+Geocycles+IUFF, 2009)<\/li>\n\n\n\n<li>Paleoweather of the Saale\/Unstrut region during the Neolithic revolution (\u201eWetterextreme und Saisonalit\u00e4ten zur Zeit der Neolithisierung Mitteldeutschlands (Saale-Unstrut-Gebiet, Neolithikum\u2013Hallstattzeit) rekonstruiert aus Muschelschalen\u201c) (IUFF, 2009)<\/li>\n\n\n\n<li>Polishing Machine Buehler VibroMet (IUFF, 2009)<\/li>\n\n\n\n<li>2<sup>nd <\/sup> International Sclerochronology Conference (External funds, conference fees, Geocycles, IUFF; 2010)<\/li>\n\n\n\n<li>Grants-in Aid (Palaeontological Association; 2010)<\/li>\n\n\n\n<li>Holocene climate reconstructions in the North Pacific realm (Geocycles; 2011)<\/li>\n\n\n\n<li>Klima und Saisonalit\u00e4t in k\u00fcstennahen Flachwasserregionen Britisch-Kolumbiens und Alaskas w\u00e4hrend der Archaischen Periode (8.000-500 BP) (IUFF; 2011\u20132012)<\/li>\n\n\n\n<li>Grants-in Aid (Paleontological Society; 2012)<\/li>\n\n\n\n<li>Clumped isotope thermometry applied to bivalve mollusks (DFG; 2011\u20132013; Kooperationsprojekt mit U Ffm)<\/li>\n\n\n\n<li>Pyrolysis Inlet System for Isotope Ratio Mass Spectrometer (Geocycles, 2013)<\/li>\n\n\n\n<li>Climate dynamics during the Upper Cretaceous (IUFF)<\/li>\n\n\n\n<li>Mollusks from the marine Quaternary of Argentina as high-resolution paleoclimatological archives (sclerochronology and isotope geochemistry) (DFG; 2013\u20132015)<\/li>\n\n\n\n<li>Toward quantifiable temperature reconstructions from bivalve shells (DFG; 2013\u20132015)<\/li>\n\n\n\n<li>Deciphering seasonal to decadal climate variability during the Oligocene: an integrated approach based on bivalve sclerochronology and palynology (DFG; 2013\u20132016)<\/li>\n\n\n\n<li>High-resolution multiproxy reconstruction of extratropical North Atlantic climate dynamics during the last millennium (DFG; 2012\u20132015)<\/li>\n\n\n\n<li>ARAMACC (EU, Marie-Curie International Training Network, 2013\u20132017)<\/li>\n\n\n\n<li>Hypoxia-Events in der Ostsee (IUFF, 2017)<\/li>\n\n\n\n<li>Quaternary paleoclimate of southern South America \u2013 A new ultra-high-resolution approach based on shells of long-lived bivalves (MPGC; 2016\u20132019)<\/li>\n\n\n\n<li>Inoceramid sclerochronology \u2013 Advancing Late Cretaceous climate reconstructions (DFG, 2016\u20132020)<\/li>\n\n\n\n<li>Bivalve shell microstructures \u2013 exploring a novel marine temperature proxy (DFG, 2018\u20132022)<\/li>\n\n\n\n<li>Tracking the history of Baltic Sea hypoxia with bivalve shells (DFG, 2019\u20132023)<\/li>\n\n\n\n<li>Bivalve shell-based, high-resolution multi-proxy reconstruction of marine primary production \u2013 <em>Pecten maximus<\/em>, Bay of Brest (DFG-ANR, 2019\u20132023)<\/li>\n\n\n\n<li>Chemical and structural variations of bivalve shells at the micrometer scale \u2013 taking sclerochronology to the next level (DFG-JSPS, 2020\u20132023)<\/li>\n\n\n\n<li>\u201eWir haben die Erde nur von unseren Kindern geliehen.\u201c Umweltver\u00e4nderungen und Lebensweise im Zentraloman im 3. und 2. Jahrtausend v. Chr.: Teilprojekt Malakologie (BMBF, 2020\u20132024)<\/li>\n\n\n\n<li>The limits of ecological uniformitarianism \u2013 a sclerochronological investigation (Leverhulme Trust, 2021\u20132024)<\/li>\n\n\n\n<li>Assessing the history of acidification in aquatic ecosystems \u2013 a novel (sclerochronological) way to determine ecological tipping points (JGU Mainz, 2024)<\/li>\n\n\n\n<li>Freshwater pearl mussels as stream water stable isotope recorders \u2013 MUSES (DFG-FNR, 2021\u20132025)<\/li>\n\n\n\n<li>Developing and calibrating paleoweather proxies from Giant Clams (Chinesisch-Deutsches Zentrum f\u00fcr Wissenschaftsf\u00f6rderung, CDZ = DFG-NSFC, 2021\u20132025)<\/li>\n<\/ul>\n\n\n<\/jgu-base-tabsitem>\n\n<jgu-base-tabsitem react-props=\"{\n    &quot;title&quot;: &quot;Publications&quot;,\n    &quot;slug&quot;: &quot;publications&quot;,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;customSlug&quot;: false\n}\">\n    \n\n<p class=\"has-big-font-size wp-block-paragraph\"><em><strong>In review:<\/strong><\/em><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(1) T\u00fcrk G, Gey CJ, <strong>Sch\u00f6ne BR<\/strong> and Pfister L. Effects of synoptic atmospheric variability on sub-daily precipitation \u03b4<sup>18<\/sup>O-air temperature functions in reconstructions of pre-instrumental \u03b4<sup>18<\/sup>O chronicles across Europe. Hydrology and Earth System Sciences. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(2) Bassett C, Andrus CFT, <strong>Sch\u00f6ne BR<\/strong> and West C. Variability in daily growth increment width indicates subtidal versus intertidal habitat in specimens of <em>Saxidomus gigantea<\/em>. Quaternary Research. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(3) Li LY, Bernal-Tamayo JP, Hetzinger S, Halfar J, Johnson MD, Vonhof H, Schiebel R and Sch\u00f6ne BR. Unlocking rhodoliths as paleoceanographic archives. Nature Communications Earth &amp; Environment.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(4) Zhao L, Xu Y, Shirai K, <strong>Sch\u00f6ne B<\/strong>, Jiang X, Deng Y and Liu Y. Strontium spiking \u2014 An effective strategy for boosting bivalve larval resilience under acidification. Aquaculture. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(5) Earland JL, Kender S, <strong>Sch\u00f6ne B<\/strong>, Sengupta T, Ward SL, Ascough P, Blaauw M and Scourse JD. Marine environmental change adjacent to a cultural landscape: Late glacial and Holocene marine palaeoenvironmental evolution of Scapa Flow, Orkney. The Holocene.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(6) Xu M, Lin Y, Ma X, Li Y, Rogers KM, Osinowo A, Oginni T, Wu H, Zhang Y and <strong>Sch\u00f6ne B<\/strong>. Enhancing trophic ecology precision: Compound-specific isotope analysis overcomes the limitations of bulk analysis in a complex mangrove ecosystem. Methods in Ecology and Evolution.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(7) Peharda M, de Winter N, Sch\u00f6ne BR, Uvanovi\u0107 H, van der Lubbe J, Verdegaal-Warmerdam S, Bujas N, Stani\u0107 R &amp; Janekovi\u0107 I. Shell isotope data of the variegated scallop, <em>Mimachlamys varia<\/em> provide information on marine environmental conditions and the timing and rate of seasonal growth. Regional Studies in Marine Science. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(8) Wang G, Dong J, Sch\u00f6ne B, He M, Zhang Y, Yang H, Xue G, Zhang Y, Wang J, Liu C, Zhang Q, Y Jia, J Dodson &amp; Yan H. Title: High-resolution trace element records in land snail shells as proxies for weather-scale environmental variability. Palaeogeography, Palaeoclimatology, Palaeoecology. <\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><em><strong>Peer-reviewed:<\/strong><\/em><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(254) Tian Y, Koncz I, Farag\u00f3 N, Knipper C, Friedrich R, Vyas D, Samu L, Spekker O, Szeniczey T, Hajdu T, Mende B, Tomka P, Pap I, Czig\u00e1ny D, Radzeviciute R, Traverso L, Gnecchi-Ruscone G, Francalacci P, <strong>Sch\u00f6ne B<\/strong>, T\u00f3th G, Sz\u00e9cs\u00e9nyi-Nagy A, le Roux P, Alt K, Hofmanov\u00e1 Z, Pohl W, Krause J, Vida T and Geary P. Unveiling the complexity of post-Roman polity formation using ancient DNA. Science, accepted. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(253) T\u00fcrk G, Gey CJ, <strong>Sch\u00f6ne BR<\/strong>, Florianic MG, Kirchner JW, Leonard L, Gourdol L, Keim R and Pfister L 2026. Bedrock geology controls on new water fractions and catchment functioning in contrasted nested catchments. Hydrology and Earth System Sciences 30, 343-369.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(252) MacRoberts RA, Evangelista LS, Louren\u00e7o M, Silva MF, Barrocas Dias C, Vasconcelos Vilar H, <strong>Sch\u00f6ne BR <\/strong>and Maurer A-F 2026. Marginalised communities in Late Medieval Lisbon: A multi-isotope diet and mobility study of the Rua dos Lagares #74 necropolis. In: A Diana, DM Istrate &amp; A Toso (Eds), Human Identities in the Archaeological Record: An Interdisciplinary Perspective from Late Antiquity to the Early Modern Period. Bloomsbury, in press.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(251) Nishida K, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Trueman C and Chung M-T 2025. Expanding the horizons of sclerochronology: new perspectives for life history and environmental monitoring. Limnology and Oceanography Letters 11, e70091.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(250) Gey CJ, T\u00fcrk G, Pfister L, Laudon H, Thielen F &amp; <strong>Sch\u00f6ne BR<\/strong> 2025. Two centuries of streamflow behavior inferred from freshwater pearl mussel shell \u03b4<sup>18<\/sup>O in northern Sweden. Water Resources Research 61, e2025WR041632. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(249) Earland JL, Kender S, <strong>Sch\u00f6ne BR<\/strong>, Sengupta T, Ward S, Bradley S, Blaauw M, Ascough P and Scourse JD 2025. Assessing Atlantic subpolar gyre influence on the northern North Sea during the Holocene: A marine palaeoenvironmental reconstruction from the Fetlar basin (Shetland, UK). Quaternary Science Reviews 372, 109711.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(248) Maurer A-F, MacRoberts R, Lopez-Aceves JM, Ortega-Gonzalez AF, Relvado C, Fernandes T, Curate F, Teixeira J, Roca-Rada X, Llamas B, Luzia I, Pires A, Oliveira LF, Tete Garcia C, Barrocas Dias C, <strong>Sch\u00f6ne BR<\/strong>, Ribeiro S, Santos JF and Valente MJ 2025. Mobility of populations in the transition from Muslim world to Portuguese Kingdom in the Algarve, south Portugal, 11<sup>th<\/sup> \u2013 13<sup>th<\/sup> centuries. Archaeological and Anthropological Sciences 17, 225.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(247) Theodoraki D, Mannino M, Prendergast A, <strong>Sch\u00f6ne BR<\/strong> and Hausmann N 2025. Multi-regional calibration of <em>Patella caerulea<\/em> as palaeothermometer using oxygen isotope values and Mg\/Ca ratios. The Holocene. doi:10.1177\/09596836251378034   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(246) Fr\u00f6hlich L, Huang Q and <strong>Sch\u00f6ne BR<\/strong> 2025. Influence of sampling strategy, alignment method and growth morphology on the temporal contextualization of high-resolution geochemical data. Palaeogeography, Palaeoclimatology, Palaeoecology 674, 113003.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(245) Guti\u00e9rrez-Zugasti I, Su\u00e1rez-Revilla R, Garc\u00eda-Esc\u00e1rzaga A, Clarke LJ, <strong>Sch\u00f6ne BR<\/strong>, Pascual-Revilla J, Garc\u00eda-G\u00f3mez JC, Zilh\u00e3o J, Zapata J and Mar\u00edn A 2025. Shell sclerochronology of the limpet <em>Patella ferruginea<\/em> Gmelin, 1791: implications for growth patterns and reconstruction of past sea surface temperatures. Palaeogeography, Palaeoclimatology, Palaeoecology 670, 112954. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(244) Schmitt K and Proctor L, Beuzen-Waller T, Schmidt C, Lindauer S, Jean M, Sauvage M, Swerida J and <strong>Sch\u00f6ne BR <\/strong>2025. Unlocking the potential of the terrestrial gastropod species <em>Zootecus insularis<\/em> as a climate archive for arid regions. Scientific Reports 15, 13754.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(243) Schmidt C, Beuzen-Waller T, Pietsch D, Proctor L, Schmitt KE, <strong>Sch\u00f6ne BR<\/strong>, Unkelbach J, Reinhardt A and Lindauer S 2025. A multi-proxy investigation of the anthropogenic landscape near the Early Bronze Age Building VII at Al-Khashbah, Oman. Open Quaternary 11, 154.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(242) Reynolds D, Genelt-Yanovskiy E, Genelt-Yanovskaya A, Northey E, Butler P, Trofimova T, Conti M, Penkman K, Huang Q, <strong>Sch\u00f6ne B<\/strong> and Scourse J 2025. A 600-year baseline of ecological and climate dynamics in the North Sea. Philosophical Transactions of the Royal Society B, accepted.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(241) Brosset C, Liu C, Yang H, Yan H and <strong>Sch\u00f6ne BR<\/strong> 2025. Integrating high-resolution Sr\/Ca and ultrastructural analyses of the <em>Tridacna squamosa<\/em> shell to reconstruct sub-daily seawater temperature variation. Palaeogeography, Palaeoclimatology, Palaeoecology 659, 112663. Data: <a>doi:10.5281\/zenodo.12206690<\/a> <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(240) Agbaje OBA, Huang Q, Op De Beeck M, Ambus PL, Thygesen LG, <strong>Sch\u00f6ne BR<\/strong> and Sand KK 2025. Molecular signatures of biomacromolecules at micron and submicron scales in <em>Arctica islandica<\/em> shells. Chemical Geology 673, 122550. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(239) <strong>Sch\u00f6ne BR<\/strong>, Young H, Vonhof H and Harland J 2025. Shells of <em>Littorina littorea<\/em> (Gastropoda) \u2013 An archive for paleoclimate and seasonal shellfish collection in medieval and early modern Orkney? Philosophical Transactions of the Royal Society B, accepted (doi:10.1098\/rstb.2024-0039).  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(238) Johnson ALA, <strong>Sch\u00f6ne BR<\/strong>, Petersen SV, de Winter NJ, Dowsett HJ, Cudennec J-F, Harper EM and Winkelstern IZ 2025. Molluscan sclerochronology in marine palaeoclimatology: taxa, technique and timespan issues. Quaternary Science Reviews 350, 109068.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(237) Cudennec J-F, <strong>Sch\u00f6ne BR<\/strong>, Leng M, Harper EM, Gofas S, Wesselingh F and Johnson ALA 2024. Stable oxygen isotopes reveal different thermal regimes during the Early Pliocene in the southern North Sea Basin: a multi-species approach. Journal of Molluscan Studies 90, eyae051.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(236) Schmitt KE, Beuzen-Waller T, Schmidt C, Proctor L, Lindauer S, Gey CJ, Pietsch D and <strong>Sch\u00f6ne BR<\/strong> 2024. <em>Melanoides tuberculata<\/em> and <em>Zootecus insularis<\/em> gastropod shells provide a snapshot into past hydroclimatic conditions of arid environments: New perspectives from Oman. Palaeogeography, Palaeoclimatology, Palaeoecology 655, 112542.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(235) Miki S, Kubota K, Nakashima R, Tanabe K, Brosset C, <strong>Sch\u00f6ne BR<\/strong>, Yamaguchi A and Shirai K 2024. High temporal resolution paleoclimate reconstruction by the analysis of growth patterns and stable isotopes of fossil shells of the long-lived bivalve <em>Mercenaria stimpsoni<\/em> from MIS 5e, 7 and 9. Palaeogeography, Palaeoclimatology, Palaeoecology 656, 112537. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(234) Liu C, Yan H, Zhao L, Zhao N, Luo F, Wen H, Yang H, Yang W, Hao J, Liang C, Tanaka K, Murakami-Sugihara N, Shirai K, Takahata N, Dodson J and <strong>Sch\u00f6ne BR<\/strong> 2024. Potential environment effect on ultrahigh resolution Sr\/Ca of giant clam shells from South China Sea. Coral Reefs 43, 1511-1521.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(233) Gey C, Pfister L, T\u00fcrk G, Thielen F, Leonard L, Schmitt K, <strong>Sch\u00f6ne BR<\/strong> 2024. Biologically driven isotope fractionation in ultrastructurally different shell portions of freshwater pearl mussels (<em>Margaritifera margaritifera<\/em>): Implications for stream water \u03b4<sup>18<\/sup>O reconstructions. Limnology and Oceanography Letters 9, 827\u2013836.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(232) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Markulin K, Uvanovi\u0107, Tanaka K, Shirai K, Goodwin D and Mihanoni\u0107 H 2024. <em>Mytilus galloprovincialis<\/em> shell growth \u2013 insights from shell geochemistry. Palaeogeography, Palaeoclimatology, Palaeoecology 650, 112367.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(231) Johnson ALA, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Bhattacharya T, Moss DK, Ivany LC and Duff RP 2024. Sclerochronological evidence of life history and ambient temperature from modern and early Pleistocene <em>Glycymeris americana<\/em> (Mollusca: Bivalvia) of the U.S. eastern seaboard. Palaios 39, 175\u2013193.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(230) Schmitt KE, Fink LJ, Jantschke A, Vigelius D and <strong>Sch\u00f6ne BR<\/strong> 2024. Isotopic and mineralogic bias introduced by pulverization of aragonite. Rapid Communications in Mass Spectrometry 38, e9842.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(229) Siebert S, Fr\u00f6hlich L, Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Delebecq G, Picheral M, Waeles M and Boriceau B 2024. Dynamics of barium and molybdenum in the Bay of Brest (France) explained by phytoplankton community structure and aggregation events. Estuarine, Coastal and Shelf Science 303, 108783.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(228) MacRoberts RA, Liberato M, Roca-Rada X, Valente M-J, Relvado C, Matos Fernandes T, Barrocas Dias C, Llamas B, Vasconcelos Vilar H, <strong>Sch\u00f6ne BR<\/strong>, Sara, R, Francisco Santos J, Teixeira, J and Maurer A-F 2024. Shrouded in History: Unveiling the ways of life of an early Muslim population in Santar\u00e9m, Portugal (8<sup>th<\/sup> \u2013 10<sup>th<\/sup> century AD). PLOS ONE 19, e0299958. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(227) Zemunik Selak P, Denamiel C, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J, Uvanovi\u0107 H, Markulin K, Vilibic I 2024. Projecting expected growth period of bivalves in a coastal temperate sea. Limnology and Oceanography Letters 9, 815\u2013826.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(226) H\u00f6che N, Zettler ML, Huang X and <strong>Sch\u00f6ne BR<\/strong> 2024. Shell microstructures (disturbance lines) of <em>Arctica islandica<\/em> (Bivalvia) \u2013 A potential proxy for severe oxygen depletion. Frontiers in Marine Science 10, 1219716. Data: doi:10.5281\/zenodo.7404135 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(225) Leclerc N, Kuehn S, Clark T, Burchell M, Coupland G and <strong>Sch\u00f6ne BR<\/strong> 2024. Investigation of seasonal settlement and clam harvest pressure in the Sechelt Inlet system, British Columbia, Canada, through sclerochronology and stable oxygen isotope analyses. Environmental Archaeology 29, 451\u2013462.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(224) Brosset C, H\u00f6che N, Witbaard R, Nishida K, Shirai K, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2023. Sr\/Ca in shells of laboratory-grown bivalves (<em>Arctica islandica<\/em>) serves as a proxy for water temperature \u2013 Perspectives for (paleo)environmental research? Frontiers in Marine Science 10, 1279164. Data: doi:10.5281\/ZENODO.8249992 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(223) Huang Q, Agbaje OBA, Conti M and <strong>Sch\u00f6ne BR<\/strong> 2023. Organic phases in bivalve (<em>Arctica islandica<\/em>) shells: Their bulk and amino acid nitrogen stable isotope compositions. Geochemistry, Geophysics, Geosystems 24, e2023GC0111147. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(222) Mette MJ, Andersson C, <strong>Sch\u00f6ne BR<\/strong>, Bonitz FGW, Melvik V, Trofimova T and Miles MW 2023. Two centuries of southwest Iceland annually-resolved marine temperature reconstructed from <em>Arctica islandica<\/em> shells. Estuarine, Coastal and Shelf Science 294, 108525. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(221) Fr\u00f6hlich L, Siebert V, Huang Q, Th\u00e9bault J, Moriceau B, Jochum KP and <strong>Sch\u00f6ne BR<\/strong> 2023. Uptake of barium, molybdenum and lithium and incorporation into the shell of <em>Pecten maximus<\/em>: refining proxies for primary production dynamics. Limnology and Oceanography 68, 2544\u20132561.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(220) Gey CJ, Thielen F, Pfister L, Hissler C, T\u00fcrk G, Baier S and <strong>Sch\u00f6ne BR<\/strong> 2023. Disturbed by pH? \u2013 Nacre tablet thickness of freshwater pearl mussels (<em>Margaritifera margaritifera<\/em>) is a poor temperature proxy. Marine and Freshwater Research 74, 1129\u20131144.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(219) de Winter NJ, Killam D, Fr\u00f6hlich L, de Nooijer L, Boer W, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J and Reichart G-J 2023. Ultradian rhythms in shell composition of photosymbiotic and non-photosymbiotic mollusks. Biogeosciences 20, 3027\u20133052.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(218) Siebert V, Moriceau B, Fr\u00f6hlich L, <strong>Sch\u00f6ne BR<\/strong>, Amice E, Beker B, Bihannic K, Bihannic I, Delebeq G, Devesa J, Gallinari M, Germain Y, Grossteffan \u00c9, Jochum KP, Le Bec T, Ge Geoff M, Liorzou C, Leynaert A, Marec C, Picheral M, Rimmelin-Maury P, Rouget M-L, Waeles M and Th\u00e9bault J 2023. HIPPO environmental monitoring: impact of phytoplankton dynamics on water column chemistry and the sclerochronology of the king scallop (<em>Pecten maximus<\/em>) as a biogenic archive for past primary production reconstructions. Earth System Science Data 15, 3263\u20133281.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(217) Huang X, Zhao L, Zettler M, Mertz-Kraus R, Jochum, KP and <strong>Sch\u00f6ne BR<\/strong> 2023. High-resolution history of oxygen depletion in the SW Baltic Sea since the mid-19<sup>th<\/sup> century as revealed by bivalve shells. Science of the Total Environment 888, 164011. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(216) Huang Q, Wu H and <strong>Sch\u00f6ne BR<\/strong> 2023. A novel trophic archive: Practical considerations of compound-specific amino acid \u03b4<sup>15<\/sup>N analysis of carbonate-bound organic matter in bivalve shells (<em>Arctica islandica<\/em>). Chemical Geology 615, 121220. Data: doi:10.5281\/zenodo.7524385 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(215) <strong>Sch\u00f6ne BR<\/strong>, Marali S, Jantschke A, Mertz-Kraus R, Butler PG and Fr\u00f6hlich L 2023. Can element chemical impurities in aragonitic shells of marine bivalves serve as proxies for environmental variability? Chemical Geology 616, 121215.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(214) Ezgeta-Bali\u0107 D, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Uvanovi\u0107 H, Vrgo\u010d N, Markulin M, Radoni\u0107 I, Denamiel CL and Kova\u010d \u017d 2022. Different life strategies of the three commercially exploited scallop species living under the same environmental conditions. Frontiers in Marine Science 9, 992042.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(213) Schmitt KE, Walliser OH, <strong>Sch\u00f6ne BR<\/strong>, Gey CJ and Schmidt C 2022. Environmental reconstructions based on aquatic and terrestrial snails originating from the Early Bronze Age and the Late Islamic Period \u2013 A stable isotope case study from the Al-Khashbah archaeological Site, Sultanate of Oman. Journal of Archaeological Science Reports 45, 103620.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(212) Fr\u00f6hlich L, Siebert V, Huang Q, Th\u00e9bault J, Jochum KP, <strong>Sch\u00f6ne BR<\/strong> 2022. Deciphering the potential of Ba\/Ca, Mo\/Ca and Li\/Ca profiles in the bivalve shell <em>Pecten maximus<\/em> as proxies for the reconstruction of phytoplankton dynamics. Ecological Indicators 141, 109121. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(211) Torbenson M, Klippel L, Hartl C, Reinig F, Treydte K, B\u00fcntgen U, Trnka M, <strong>Sch\u00f6ne B<\/strong>, Schneider L and Esper J 2022. Investigation of age trends in tree-ring stable carbon and oxygen isotopes from northern Fennoscandia over the past millennium. Quaternary International 631, 105\u2013114.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(210) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ and Goolaerts S 2022. Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea Basin, and its implications. Climate of the Past 18, 1203\u20131229. Data: doi:10.5281\/zenodo.5585630<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(209) Brosset C, H\u00f6che N, Shirai K, Nishida K, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2022. Strong coupling between biomineral morphology and Sr\/Ca of <em>Arctica islandica<\/em> (Bivalvia) \u2014 Implications for shell Sr\/Ca-based temperature estimates. Minerals 12, 500.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(208) <strong>Sch\u00f6ne BR<\/strong>, Marali S, Mertz-Kraus R, Butler PG, Wanamaker Jr AD and Fr\u00f6hlich L 2022. Importance of weighting high-resolution proxy data from bivalve shells to avoid bias caused by sample spot geometry and variability in seasonal growth rate. Frontiers in Earth Science 10, 889115.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(207) <strong>Sch\u00f6ne BR<\/strong>, Huang X, Jantschke A, Mertz-Kraus R and Zettler ML 2022. High-resolution reconstruction of dissolved oxygen levels in the Baltic Sea with bivalves \u2013 a multi-species comparison (<em>Arctica islandica<\/em>, <em>Astarte borealis<\/em>, <em>Astarte elliptica<\/em>). Frontiers in Marine Science 8, 820731. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(206) Fr\u00f6hlich L, Siebert V, Walliser EO, Th\u00e9bault J, Jochum KP, Chauvaud L and <strong>Sch\u00f6ne BR<\/strong> 2022. Ba\/Ca profiles in shells of <em>Pecten maximus<\/em> \u2013 A proxy for specific primary producers rather than bulk phytoplankton. Chemical Geology 593, 120743. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(205) Milano S, <strong>Sch\u00f6ne BR<\/strong>, Gonz\u00e1lez-Morales MR and Guti\u00e9rrez-Zugasti I 2022. Temporal and spatial variability of prehistoric aquatic resource procurement: a case study from Mesolithic Northern Iberia. Scientific Reports 12, 3111.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(204) H\u00f6che N, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2022. Microstructural mapping of <em>Arctica islandica<\/em> shells reveals environmental and physiological controls on biomineral size. Frontiers in Earth Science 9, 781305. Data: doi:10.5281\/zenodo.5215465 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(203) Peharda M, Gillikin DP, <strong>Sch\u00f6ne BR<\/strong>, Verheyden A, Uvanovi\u0107 H, Markulin K, \u0160ari\u0107 T, Janekovi\u0107 I and \u017dupan I 2022. Nitrogen isotope sclerochronology \u2013 Insights into coastal environmental conditions and <em>Pinna nobilis<\/em> ecology. Frontiers in Marine Science 8, 816879. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(202) Th\u00e9bault J, Jolivet A, Waeles M, Tabouret H, Saboret S, P\u00e9cheyran P, Leynaert A, Jochum KP, <strong>Sch\u00f6ne BR<\/strong>, Fr\u00f6hlich L, Siebert V, Amice E and Chauvaud L 2022. Scallop shells as geochemical archives of phytoplankton-related ecological processes in a temperate coastal ecosystem. Limnology and Oceanography 67, 187\u2013202.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(201) <strong>Sch\u00f6ne BR<\/strong> and Huang Q 2021. Ontogenetic \u03b4<sup>15<\/sup>N trends and multidecadal variability in shells of the bivalve mollusk, <em>Arctica islandica<\/em>. Frontiers in Marine Science 8, 748593. doi:10.3389\/fmars.2021.748593 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(200) de Winter NJ, D\u00e4mmer LK, Falkenroth M, Reichert G-J, Moretti S, Martinez-Garc\u00eda A, H\u00f6che N, <strong>Sch\u00f6ne BR<\/strong>, Rodiouchkina K, Goderis S, Vanhaecke F, van Leeuwen SM and Ziegler M 2021. Multi-isotopic and trace element evidence against different formation pathways for oyster microstructures. Geochimica et Cosmochimica Acta 308, 326\u2013352. Data: doi:10.5281\/zenodo.4733727<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(199) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Corr\u00e8ge T 2021. Advances of sclerochronology research in the last decade. Palaeogeography, Palaeoclimatology, Palaeoecology 570, 110371.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(198) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Corr\u00e8ge T 2021. Reading the diaries of life &#8211; current advances in sclerochronological research. Palaeogeography, Palaeoclimatology, Palaeoecology 570, 110373.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(197) Weber M, Hinz Y, <strong>Sch\u00f6ne BR<\/strong>, Jochum KP, Hoffmann D, Sp\u00f6tl C, Riechelmann DFC and Scholz D 2021. Opposite trends in Holocene speleothem proxy records from two neighboring caves in Germany: A multi-proxy evaluation. Frontiers in Earth Science 9, 642651.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(196) H\u00f6che N, Walliser EO, de Winter NJ, Witbaard R and <strong>Sch\u00f6ne BR<\/strong> 2021. Temperature-induced microstructural changes in shells of laboratory-grown <em>Arctica islandica<\/em> (Bivalvia). PLOS ONE 16, e0247968. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(195) Alexandroff SJ, Butler PG, Hollyman PR, <strong>Sch\u00f6ne BR<\/strong> and Scourse JD 2021. Late Holocene seasonal temperature variability of the western Scottish shelf (St Kilda) recorded in fossil shells of the bivalve <em>Glycymeris glycymeris<\/em>. Palaeogeography, Palaeoclimatology, Palaeoecology 562, 110146. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(194) <strong>Sch\u00f6ne BR<\/strong>, Huang X, Zettler ML, Zhao L, Mertz-Kraus R, Jochum KP and Walliser EO 2021. Mn\/Ca in shells of <em>Arctica islandica<\/em> (Baltic Sea) \u2013 A potential proxy for ocean hypoxia? Estuarine, Coastal and Shelf Science 251, 107257. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(193) Trofimova T, Andersson C, Bonitz FGW, Rydland Pedersen L-E and <strong>Sch\u00f6ne BR <\/strong>2021. Reconstructing early Holocene seasonal bottom-water temperatures in the northern North Sea using stable oxygen isotope records of <em>Arctica islandica<\/em> shells. Palaeogeography, Palaeoclimatology, Palaeoecology 567, 110242. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(192) Siebert V, Poitevin P, Chauvaud L, <strong>Sch\u00f6ne BR<\/strong>, Lazure P and Th\u00e9bault J 2021. Using growth and geochemical composition of <em>Clathromorphum compactum<\/em> to track multiscale North Atlantic hydro-climate variability. Palaeogeography, Palaeoclimatology, Palaeoecology 562, 110097. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(191) Uvanovi\u0107 H, <strong>Sch\u00f6ne BR<\/strong>, Markulin K, Janekovi\u0107 I and Peharda M 2021. Venerid bivalve <em>Venus verrucosa<\/em> as a high-resolution archive of seawater temperature in the Mediterranean Sea. Palaeogeography, Palaeoclimatology, Palaeoecology 561, 110057. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(190) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Sloane HJ and Janekovi\u0107 I 2021. Growth-increment characteristics and isotopic (\u03b4<sup>18<\/sup>O) temperature record of sub-thermocline <em>Aequipecten opercularis<\/em> (Mollusca:Bivalvia): evidence from modern Adriatic forms and an application to early Pliocene examples from eastern England. Palaeogeography, Palaeoclimatology, Palaeoecology 561, 110046. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(189) Peharda M, <strong>Sch\u00f6ne BR<\/strong> and Limburg KE 2020. Sclerochronological research: Opportunities and challenges. Estuarine, Coastal and Shelf Science 245, 107012.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(188) Trofimova T, Alexandroff S, Mette M, Tray E, Butler P, Campana S, Harper E, Johnson A, Morrongiello J, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Andersson C, Andrus F, Black B, Burchell M, Carroll M, DeLong K, Gillanders B, Gr\u00f8nkj\u00e6r P, Killam D, Prendergast A, Reynolds D, Scourse J, Shirai K, Th\u00e9bault J, Trueman C and de Winter N 2020. Fundamental questions and applications of sclerochronology: Community-defined research priorities. Estuarine, Coastal and Shelf Science 245, 106977.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(187) Walliser EO, Vodr\u00e1\u017eka R, H\u00f6che N, Voigt S and <strong>Sch\u00f6ne BR<\/strong> 2020. Late Turonian climate variability in the Bohemian Cretaceous Basin \u2013 A sclerochronological study of <em>Inoceramus hercules<\/em> shells from the \u00dapohlavy quarry (Czech Republic). Palaeogeography, Palaeoclimatology, Palaeoecology 560, 109996. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(186) Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2020. Paleoceanography of the Late Cretaceous northwestern Tethys Ocean: seasonal upwelling or steady thermocline? PLoS ONE 15, e0238040.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(185) Markulin K, Uvanovi\u0107 H, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, Kova\u010d Z, Arapov J and Peharda M 2020. Spatial variations in Ba\/Ca<sub>shell<\/sub> fingerprints of <em>Glycymeris pilosa<\/em> along the eastern Adriatic Sea. Estuarine, Coastal and Shelf Science 243, 106821. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(184) Saulsbury J, Moss DK, Ivany LC, Kowalewski M, Lindberg DR, Gillooly JF, Heim NA, McClain CR, Payne J, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong>, Goodwin D and Finnegan S 2020. Idiographic and nomothetic approaches to heterogeneity are complementary: Response to comments on \u201cEvaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates\u201d. Paleobiology 46, 275\u2013277.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(183) Riechelmann, DFC, Riechelmann S, Wassenburg JA, Fohlmeister J, <strong>Sch\u00f6ne BR<\/strong>, Jochum KP, Richter DK and Scholz D 2020. High\u2010resolution proxy records from two simultaneously grown stalagmites from Zoolithencave (southeastern Germany) and their potential for palaeoclimate reconstruction. Geochemistry, Geophysics, Geosystems 21, e2019GC008755.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(182) Walliser EO, Fr\u00f6hlich L and <strong>Sch\u00f6ne BR <\/strong>2020. Inoceramid single prism sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 547, 109690.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(181) H\u00f6che N, Peharda M, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2020. Morphological variations of crossed-lamellar ultrastructures of <em>Glycymeris bimaculata<\/em> (Bivalvia) serve as a marine temperature proxy. Estuarine, Coastal and Shelf Science 237, 106658. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(180) Zhao L, Shirai K, Tanaka K, Milano S, Higuchi T, Murakami-Sugihara N, Walliser EO, Yang F, Deng Y and <strong>Sch\u00f6ne BR<\/strong> 2020. A review of transgenerational effects of ocean acidification on marine bivalves and their implications for sclerochronology. Estuarine, Coastal and Shelf Science 235, 106620.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(179) <strong>Sch\u00f6ne BR<\/strong>, Meret AE, Baier SM, Fiebig J, Esper J, McDonnell J and Pfister L 2020. Freshwater pearl mussels from northern Sweden serve as long-term, high-resolution stream water isotope recorders. Hydrology and Earth System Sciences 24, 673\u2013696.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(178) MacRoberts RA, Barrocas Dias CM, Fernandes T, Santos AL, Umbelino C, Gon\u00e7alves A, Santos JF, Ribeiro S, <strong>Sch\u00f6ne BR<\/strong>, Barros F, Correia F, Vasconcelos Vilar H and Maurer A-F 2020. Diet and mobility during the Christian conquest of Iberia: The multi-isotopic investigation of a 12<sup>th<\/sup>-13<sup>th<\/sup> century military order in \u00c9vora, Portugal. Journal of Archaeological Science Reports 30, 102210. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(177) Nicastro A, Surge D, Briz i Godino I, \u00c1lvarez M, <strong>Sch\u00f6ne BR<\/strong> and Bas M 2020. High-resolution records of growth temperature and life history of two <em>Nacella<\/em> limpet species, Tierra del Fuego, Argentina. Palaeogeography, Palaeoclimatology, Palaeoecology 540, 109526. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(176) Zhao L, Milano S, Tanaka K, Liang J, Deng Y, Yang F, Walliser E and <strong>Sch\u00f6ne BR<\/strong> 2020. Trace elemental alterations of bivalve shells following transgenerational exposure to ocean acidification: Implications for geographical traceability and environmental reconstruction. Science of the Total Environment 705, 135501.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(175) Featherstone AM, Butler PG, <strong>Sch\u00f6ne BR<\/strong>, Peharda M and Th\u00e9bault J 2020. A 45-year sub-annual reconstruction of seawater temperature in the Bay of Brest, France, using the shell oxygen isotope composition of the bivalve <em>Glycymeris glycymeris<\/em>. The Holocene 30, 3\u201312.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(174) Saulsbury J, Moss DK, Ivany LC, Kowalewski M, Lindberg DR, Gillooly JF, Heim NA, McClain CR, Payne J, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong>, Goodwin D and Finnegan S 2019. Evaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates. Paleobiology 45, 405\u2013420.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(173) Aguirre M, Voelker A, <strong>Sch\u00f6ne BR<\/strong>, Dettman D, Panarello H, G\u00f3mez Peral L, Castro L, Donato M, Medina R, Richiano S 2019. Late Quaternary nearshore molluscan patterns from Patagonia: windows to southern southwestern Atlantic-Southern Ocean palaeoclimate and biodiversity changes? Global and Planetary Change 181, 102990.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(172) Peharda M, Walliser EO, Markulin K, Purroy A, Uvanovi\u0107 H, Janekovic I, \u017dupan I, Vilibic I and <strong>Sch\u00f6ne BR<\/strong> 2019. <em>Glycymeris pilosa <\/em>(Bivalvia) \u2013 A high-potential geochemical archive of the environmental variability in the Adriatic Sea. Marine Environmental Research 150, 104759.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(171) Milano S, <strong>Sch\u00f6ne BR<\/strong> and Guti\u00e9rrez-Zugasti I 2019. Oxygen and carbon stable isotopes of <em>Mytilus gallopronvincialis<\/em> Lamarck, 1819 shells as environmental and provenance proxies. The Holocene, 30, 65\u201376.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(170) Flessa KW, Calderon-Aguilera L , Cintra-Buenrostro CE, Dettman DL, Dietl GP, Goodwin DH, Jacobs DK, Kowalewski M, Nelson SM, Rowell K, <strong>Sch\u00f6ne BR<\/strong>, Smith JA and Zamora-Arroyo F 2019. Vaquita face extinction from bycatch. Comment on Manjarrez-Bringas, N. et al., Lessons for sustainable development: Marine mammal conservation policies and its social and economic effects. Sustainability 11, 2169 (doi:10.3390\/su11072161).<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(169) Flessa K, Calderon L, Cintra-Buenrostro C, Dettman D, Dietl G, Goodwin D, Kowalewski M, Nelson, Rowell K, <strong>Sch\u00f6ne B<\/strong>, Smith J, Zamora-Arroyo F 2019. Comment on Rojas-Bracho et al., 2018: Unsubstantiated claims can lead to tragic conservation outcomes. BioScience 69, 321\u2013322.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(168) Estrella-Mart\u00ednez J, Ascough PL, <strong>Sch\u00f6ne BR<\/strong>, Scourse JD and Butler PG 2019. 8.2 ka event North Sea hydrography determined by bivalve shell stable isotope geochemistry. Nature Scientific Reports 9, 6753.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(167) Estrella-Mart\u00ednez J, <strong>Sch\u00f6ne BR<\/strong>, Thurstan RH, Capuzo E, Scourse JD and Butler P 2019. Reconstruction of Atlantic herring (<em>Clupea harengus<\/em>) recruitment in the North Sea for the past 455 years based on the \u03b4<sup>13<\/sup>C from annual shell increments of the ocean quahog (<em>Arctica islandica<\/em>). Fish and Fisheries 2019, 1\u201315 (doi: 10.1111\/faf.12362).  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(166) Black BA, Andersson C, Butler PG, Carroll M, DeLong KL, Reynolds DJ, <strong>Sch\u00f6ne BR<\/strong>, Scourse J, van der Sleen P, Wanamaker AD and Witbaard R 2019. The revolution in marine paleoecology and paleoclimatology. Biology Letters 15, 20180665.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(165) Markulin K, Peharda M, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, Uvanovi\u0107 H, Kova\u010d \u017d and Janekovi\u0107 I 2019. Trace and minor element records in aragonitic bivalve shells as environmental proxies. Chemical Geology 507, 120\u2013133.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(164) Hansen M, Scholz D, <strong>Sch\u00f6ne BR<\/strong> and Sp\u00f6tl C 2019. Simulating speleothem growth in the laboratory: Determination of the stable isotope fractionation (\u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C) between H<sub>2<\/sub>O, DIC and CaCO<sub>3<\/sub>. Chemical Geology 509, 20\u201344.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(163) Walliser EO, Tanabe K, Hikida Y, Shirai K and <strong>Sch\u00f6ne BR <\/strong>2019. Sclerochronological study of the gigantic inoceramids <em>Sphenoceramus schmidti<\/em> and <em>S. sachalinensis<\/em> from Hokkaido, northern Japan. Lethaia 52, 410\u2013428.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(162) Lindauer S, Friedrich R, van Gyseghem R, <strong>Sch\u00f6ne BR<\/strong> and Hinderer M 2019. Highly-resolved radiocarbon measurements on shells from Kalba, UAE, using carbonate handling system and gas ion source with MICADAS. Nuclear Instruments and Methods in Physics Research B455, 146\u2013153.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(161) Johnson ALA, Valentine AM, Leng MJ, <strong>Sch\u00f6ne BR<\/strong> and Sloane HJ 2019. Life history, environment and extinction of the scallop <em>Carolinapecten eboreus<\/em> (Conrad) in the Plio-Pleistocene of the U.S. eastern seaboard. Palaios 34, 49\u201370.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(160) Tanaka K, Okaniwa N, Miyaji T, Murakami-Sugihara N, Zhao L, Tanabe K, <strong>Sch\u00f6ne BR<\/strong> and Shirai K 2019. Microscale magnesium distribution in shell of the Mediterranean mussel <em>Mytilus galloprovincialis<\/em>: An example of multiple factors controlling Mg\/Ca in biogenic calcite. Chemical Geology 511, 521\u2013532.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(159) Vignols RM, Valentine AM, Finlayson AG, Harper EM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Sloane H and Johnson ALA 2018. Marine climate and hydrography during deposition of the Coralline Crag (early Pliocene, UK): isotopic evidence from 16 benthic invertebrate taxa. Chemical Geology 526, 62\u201383.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(158) Garc\u00eda-Esc\u00e1rzaga A, Guti\u00e9rrez-Zugasti I, <strong>Sch\u00f6ne BR<\/strong>, Cobo A, Mart\u00edn-Chivelet J and Gonz\u00e1lez-Morales MR 2018. Growth patterns of the topshell <em>Phorcus lineatus<\/em> (da Costa, 1778) in northern Iberia deduced from shell sclerochronology. Chemical Geology 526, 49\u201361.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(157) Peharda Uljevic M, Thebault J, Markulin K, <strong>Sch\u00f6ne BR<\/strong>, Janekovi\u0107 I and Chauvaud L 2018. Contrasting shell growth strategies in two Mediterranean bivalves revealed by oxygen-isotope ratio geochemistry: the case of <em>Pecten jacobaeus<\/em> and <em>Glycymeris pilosa<\/em>. Chemical Geology 526, 23\u201335.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(156) Burchell M, Stopp MP, Cannon A, Hallmann N and <strong>Sch\u00f6ne BR<\/strong> 2018. Determining seasonality of mussel collection from an early historic Inuit site, Labrador, Canada: Comparing thin-sections with high-resolution stable oxygen isotope analysis. Journal of Archaeological Science: Reports 21, 1215\u20131224.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(155) Ballesta-Artero I, Zhao L, Milano S, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, van der Meer J and Witbaard R 2018. Environmental and biological factors influencing trace elemental and microstructural properties of <em>Arctica islandica <\/em>shells. Science of the Total Environment 645, 913\u2013923.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(154) Rubo S, Aguirre ML, Richiano SM, Medina RA and <strong>Sch\u00f6ne BR<\/strong> 2018. <em>Leukoma (Protothaca) antiqua<\/em> (Bivalvia) &#8211; A high-resolution marine paleoclimate archive for southern South America? Palaeogeography, Palaeoclimatology, Palaeoecology 505, 398\u2013409. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(153) Poitevin P, Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Jolivet A, Lazure P and Chauvaud L 2018. Ligament, hinge, and shell cross-sections of the Atlantic surfclam (<em>Spisula solidissima<\/em>): Promising marine archives NE North America. PLOS ONE 13, e0199212. Data: doi:10.5281\/zenodo.1242821 <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(152) Milano S, Lindauer S, Prendergast A, Hill E, Hunt CO, Barker G and <strong>Sch\u00f6ne BR<\/strong> 2018. Mollusk carbonate thermal behaviour and its implications in understanding prehistoric fire events in shell middens. Journal of Archaeological Science Reports 20, 443\u2013457.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(151) Zhao L, Milano S, Walliser E and <strong>Sch\u00f6ne BR<\/strong> 2018. Bivalve shell formation in a naturally CO<sub>2<\/sub>-enriched habitat: Unraveling the resilience mechanisms from elemental signatures. Chemosphere 203, 132\u2013138.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(150) Esper J, Holzk\u00e4mper S, B\u00fcntgen U, <strong>Sch\u00f6ne B<\/strong>, Keppler F, Hartl C, St. George S, Riechelmann DFC and Treydte K 2018. Site-specific climatic signals in stable isotope records from Swedish pine forests. Trees 32, 855\u2013869.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(149) Walliser EO, Mertz R and <strong>Sch\u00f6ne BR<\/strong> 2018. The giant inoceramid <em>Platyceramus platinus<\/em> as a high-resolution paleoclimate archive for the Late Cretaceous of the Western Interior Seaway. Cretaceous Research 86, 73\u201390.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(148) Zhao L, Yang F, Milano S, Han T, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2018. Transgenerational acclimation to seawater acidification in the Manila clam <em>Ruditapes philippinarum<\/em>: Preferential uptake of metabolic carbon. Science of the Total Environment 627, 95\u2013103.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(147) Purroy A, Milano S, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J and Peharda M 2018. Drivers of shell growth of the bivalve, <em>Callista chione<\/em> (L. 1758) \u2013 Combined environmental and biological factors. Marine Environmental Research 134, 138\u2013149.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(146) Trofimova T, Milano S, Andersson C, Bonitz FGW and <strong>Sch\u00f6ne BR<\/strong> 2018. Oxygen isotope composition of <em>Arctica islandica<\/em> aragonite in the context of shell architectural organization \u2013 implication for paleoclimate reconstructions. Geochemistry, Geophysics, and Geosystems 19, 453\u2013470. doi: 10.1002\/2017GC007239. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(145) Prendergast AL, Versteegh EAA and <strong>Sch\u00f6ne BR<\/strong> 2017. New research on the development of high-resolution palaeoenvironmental proxies from geochemical properties of biogenic carbonates. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 1\u20136.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(144) Tanabe K, Miyaji T, Sugihara N, Mimura T, Shirai K, <strong>Sch\u00f6ne BR<\/strong> and Kubota K 2017. Interannual to decadal variability of summer sea surface temperature in the Sea of Okhotsk recorded in the shell growth history of Stimpson\u2019s hard clams (<em>Mercenaria stimpsoni<\/em>). Global and Planetary Change 157, 35\u201347.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(143) von Leesen G, Beierlein L, Scarponi D, <strong>Sch\u00f6ne BR<\/strong> and Brey T 2017. A low seasonality scenario in the Mediterranean Sea during the Calabrian (Early Pleistocene) inferred from fossil <em>Arctica islandica<\/em> shells. Palaeogeography, Palaeoclimatology, Palaeoecology 485, 706\u2013714.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(142) Piermattei A, Urbinati C, Tonelli E, Eggertsson O, Levani\u010d T, Kaczka R, Andrew C, <strong>Sch\u00f6ne BR<\/strong> and B\u00fcntgen U 2017. Potential and limitation of combining terrestrial and marine growth records from Iceland. Global and Planetary Change 155, 213\u2013224.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(141) Hansen M, Scholz D, Froeschmann M-L, <strong>Sch\u00f6ne BR<\/strong> and Sp\u00f6tl C 2017. Carbon isotope exchange between gaseous CO<sub>2<\/sub> and thin solution films: Artificial cave experiments and a complete diffusion-reaction model. Geochimica et Cosmochmica Acta 211, 28\u201347.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(140) Walliser EO, Lohmann G, Niezgodzki I and <strong>Sch\u00f6ne BR<\/strong> 2017. Inter-annual climate variability in Europe during the Oligocene Icehouse. Palaeogeography, Palaeoclimatology, Palaeoecology 475, 140\u2013153.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(139) Marchais V, Jolivet A, Herv\u00e9 S, Roussel S, <strong>Sch\u00f6ne BR<\/strong>, Grall J, Chauvaud L and Clavier J 2017. New tool to elucidate the diet of the ormer <em>Haliotis tuberculata<\/em> (L.): Digital shell color analysis. Marine Biology 164, 71, doi:10.1007\/s00227-017-3103-3.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (138) Gutierrez I, Su\u00e1rez-Revilla R, Clarke L and <strong>Sch\u00f6ne BR<\/strong>, Bailey G and Gonz\u00e1les-Morales 2017. Shell oxygen isotope values and sclerochronology of the limpet <em>Patella vulgata<\/em> Linnaeus 1758 from northern Iberia: implications for the reconstruction of past seawater temperatures. Palaeogeography, Palaeoclimatology, Palaeoecology 475, 162\u2013175 (and reprint in 484, 48\u201361).  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(137) Prendergast AL and <strong>Sch\u00f6ne BR<\/strong> 2017. Oxygen isotopes from limpet shells: implications for palaeothermometry and seasonal shellfish foraging studies in the Mediterranean. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 33\u201347.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(136) Zhao L, Walliser EO, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2017. Unionid shells (<em>Hyriopsis cumingii<\/em>) record manganese cycling at the sediment-water interface in a shallow eutrophic lake in China (Lake Taihu). Palaeogeography, Palaeoclimatology, Palaeoecology 484, 97\u2013108.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(135) Milano S, Nehrke G, Wanamaker Jr AD, Ballesta-Artero I, Brey T and <strong>Sch\u00f6ne BR<\/strong> 2017. The effects of environment on <em>Arctica islandica<\/em> shell formation and architecture. Biogeosciences 14, 1577\u20131591.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(134) Casella LA, Griesshaber E, Yin X, Ziegler A, Mavromatis V, M\u00fcller D, Ritter A-C, Hippler D, Harper EM, Dietzel M, Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Angiolini L and Schmahl WW 2017. Experimental diagenesis: Insights on aragonite to calcite transformation of <em>Arctica islandica<\/em> shells by hydrothermal treatment. Biogeosciences 14, 1461\u20131492.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(133) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong>, Shirai K, Takahata N, Ishida A and Sano Y 2017. Minute co-variations of Sr\/Ca ratios and microstructures in the aragonitic shell of <em>Cerastoderma edule<\/em> (Bivalvia) \u2013 Are geochemical variations at the ultra-scale masking potential environmental signals? Geochimica et Cosmochimica Acta 205, 256\u2013271.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(132) Dassi\u00e9 E, DeLong K, Kilbourne H, Williams B, Abram N, Brenner L, Brahmi C, Cobb K, Corr\u00e8ge T, Dissard D, Emile-Geay J, Evangelista H, Evans M, Farmer J, Felis T, Gagan M, Gillikin D, Goodkin N, Khodri M, Lavagnino AC, LaVigne M, Lazareth C, Linsley B, Lough J, McGregor H, Nurhati I, Ouellette G, Perrin L, Raymo M, Rosenheim B, Sanstrom M, <strong>Sch\u00f6ne BR<\/strong>, Sifeddine A, Stevenson S, Thompson DM, Waite A, Wanamaker A and Wu H 2017. Saving our marine archives. EOS Transactions 98, 32\u201336.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(131) Betts MW, Burchell M and <strong>Sch\u00f6ne BR<\/strong> 2017. An economic history of the maritime woodland period in Port Joli Harbour, Nova Scotia. Journal of the North Atlantic 10, 18\u201341.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(130) Colonese AC, Netto SA, Francisco AS, DeBlais P, Villagran XS, Hausmann N, Sunderlick Faria D, Prendergast A, <strong>Sch\u00f6ne BR<\/strong> and Fonseca Giannini PC 2017. Shell sclerochronology and stable isotopes of the bivalve <em>Anomalocardia flexuosa<\/em> (Linnaeus, 1767) from southern Brazil: implications for environmental and archaeological studies. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 7\u201321.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(129) Johnson ALA, Valentine A, Leng M, Sloane HJ and <strong>Sch\u00f6ne BR<\/strong> 2017. Isotopic temperatures from the Early and Mid-Pliocene of the US Middle Atlantic Coastal Plain, and their implications for the cause of regional marine climate change. Palaios 32, 250\u2013269.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(128) Marali S, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R, Griffin SM, Wanamaker Jr AD, Butler PG, Holland HA and Jochum KP 2017. Reproducibility of trace element variations (Na\/Ca, Mg\/Ca, Mn\/Ca, Sr\/Ca, and Ba\/Ca) within and between specimens of the bivalve <em>Arctica islandica<\/em> \u2013 a LA-ICP-MS line scan study. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 109\u2013128.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(127) Marali S, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R, Griffin SM, Wanamaker Jr AD, Matras U and Butler PG 2017. Ba\/Ca ratios in shells of <em>Arctica islandica<\/em> \u2013 Potential environmental proxy and crossdating tool. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 347\u2013361.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(126) Zhao L, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2017. Controls on strontium and barium incorporation into freshwater bivalve shells (<em>Corbicula fluminea<\/em>). Palaeogeography, Palaeoclimatology, Palaeoecology 465, 386\u2013394.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(125) Milano S, <strong>Sch\u00f6ne BR<\/strong> and Witbaard R 2017. Changes of shell microstructural characteristics of <em>Cerastoderma edule<\/em> (Bivalvia) &#8211; A novel proxy for water temperature. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 395\u2013406.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(124) Butler PG and <strong>Sch\u00f6ne BR<\/strong> 2017. New research in the methods and applications of sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 295\u2013299.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(123) <strong>Sch\u00f6ne BR<\/strong>, Schmitt K and Maus M 2017. Effects of sample pretreatment and external contamination on bivalve shell and Carrara marble \u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C signatures. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 22\u201332.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(122) Zhao L, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R and Yang F 2017. Insights from sodium into the impacts of elevated <em>p<\/em>CO<sub>2<\/sub> and temperature on bivalve shell formation. Journal of Marine Experimental Biology and Ecology 486, 148\u2013154.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(121) Zhao L, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R and Yang F, 2017. Sodium provides unique insights into transgenerational effects of ocean acidification on bivalve shell formation. Science of the Total Environment 577, 360\u2013366.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(120) Zhao L, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2016. Delineating the role of calcium in shell formation and elemental composition of <em>Corbicula fluminea<\/em> (Bivalvia). Hydrobiologia 790, 259\u2013272.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(119) Lindauer S, Marali S, <strong>Sch\u00f6ne, BR<\/strong>, Uerpmann H-P, Kromer B and Hinderer M 2016. Investigating the local reservoir effect and stable isotopes of shells from South-East Arabia. Radiocarbon 59, 355\u2013372.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(118) <strong>Sch\u00f6ne BR<\/strong> and Krause RA 2016. Retrospective environmental biomonitoring \u2013 Mussel Watch expanded. Global Planetary Change 144, 228\u2013251.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(117) Walliser EO, Lohmann G, Niezgodzki I, T\u00fctken T and <strong>Sch\u00f6ne BR<\/strong> 2016<strong>.<\/strong> Response of Central European SST to atmospheric <em>p<\/em>CO<sub>2<\/sub> forcing during the Oligocene \u2013 A combined proxy data and numerical climate model approach. Palaeogeography, Palaeoclimatology, Palaeoecology 459, 552\u2013569. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(116) Milano S, <strong>Sch\u00f6ne BR<\/strong>, Wang S and M\u00fcller WE 2016. Impact of high <em>p<\/em>CO<sub>2<\/sub> on shell structure of the bivalve <em>Cerastoderma edule<\/em>. Marine Environmental Research, 119, 144\u2013155.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(115) Milano S, Prendergast AL and <strong>Sch\u00f6ne BR<\/strong> 2016. Effects of cooking on mollusk shell structure and chemistry: implications for archeology and paleoenvironmental reconstruction. Journal of Archaeological Science: Reports 7, 14\u201316.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(114) Riechelmann DFC, Maus M, Dindorf W, Konter O, <strong>Sch\u00f6ne BR<\/strong> and Esper J 2016. Comparison of \u03b4<sup>13<\/sup>C and \u03b4<sup>18<\/sup>O from cellulose, whole wood, and resin-free whole wood from an old high elevation <em>Pinus uncinata<\/em> in the Spanish central Pyrenees. Isotopes in Environmental &amp; Health Studies 52, 694\u2013705.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(113) Prendergast A, Stevens RE, O\u2019Connell TC, Fadlalak A, Touati M, al-Mzeine A, <strong>Sch\u00f6ne BR<\/strong>, Hunt CO and Barker G 2016. Changing patterns of eastern Mediterranean shellfish exploitation in the Late Glacial and Early Holocene: oxygen isotope evidence from gastropod in Epipaleolithic to Neolithic human occupation layers at the Haua Fteah cave, Libya. Quaternary International 407, 80\u201393.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(112) Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Hoffmann R &amp; Niedermayr A 2016. Mollusc and brachiopod skeletal hard parts: intricate archives of their marine environment. Sedimentology 63, 1\u201359.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(111) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2015. Strontium\/lithium ratio in shells of <em>Cerastoderma edule<\/em> (Bivalvia) &#8211; A new potential temperature proxy for brackish environments. Chemical Geology 417, 341\u2013355.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(110) Esper J, Schneider L, Smerdon J, <strong>Sch\u00f6ne BR<\/strong> and B\u00fcntgen U 2015. Signals and memory in tree-ring width and density data. Dendrochronologia 35, 62\u201370.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(109) Peharda M, Puljas S, Chauvaud L, <strong>Sch\u00f6ne BR<\/strong>, Ezgeta-Bali\u010d D and Th\u00e9bault J 2015. Growth and longevity of <em>Lithophaga lithophaga<\/em> \u2013 what can we learn from shell structure and stable isotope composition? Marine Biology 162, 1531\u20131540.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(108) Beierlein L, Salvigsen O, <strong>Sch\u00f6ne BR<\/strong>, Mackensen A, Brey T 2015. The seasonal water temperature cycle in the Arctic Dicksonfjord (Svalbard) during the Holocene Climate Optimum derived from sub-fossil <em>Arctica islandica<\/em> shells. The Holocene 25, 1197\u20131207.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(107) Surge D and <strong>Sch\u00f6ne BR<\/strong> 2015. Bivalve sclerochronology. In: WJ Rink and JW Thompson (Eds), Encyclopedia of Scientific Dating Methods. Springer, 108\u2013115.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(106) Carilli J, Williams B,<strong> Sch\u00f6ne BR<\/strong>, Krause RA and Fallon S 2015. Historical contaminant records from sclerochronological archives (corals, sclerosponges, bivalves, coralline algae). Chapter 14. In: Jules M Blais, Michael R Rosen and John P Smol (Eds), Environmental Contaminants: Using natural archives to track sources and long-term trends of pollution. Developments in Paleoenvironmental Research 18, 355\u2013391.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(105) Jolivet A, Chauvaud L, Huchette S, Legoff C, Th\u00e9bault J, Nasreddine K, <strong>Sch\u00f6ne BR<\/strong> and Clavier J 2015. The ormer (<em>Haliotis tuberculata<\/em>): a new, promising paleoclimatic tool. Palaeogeography, Palaeoclimatology, Palaeoecology 427, 32\u201340.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(104) Walliser EO, <strong>Sch\u00f6ne BR<\/strong>, T\u00fctken T, Zirkel J, Grimm KI and Pross J 2015. The bivalve <em>Glycymeris planicostalis<\/em> as a high-resolution paleoclimate archive for the Rupelian (early Oligocene) of Central Europe. Climate of the Past 11, 653\u2013668.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(103) Marali S and <strong>Sch\u00f6ne BR<\/strong> 2015. Oceanographic control on shell growth of <em>Arctica islandica<\/em> (Bivalvia) in surface waters of Northeast Iceland &#8211; implications for paleoclimate reconstructions. Palaeogeography, Palaeoclimatology, Palaeoecology 420, 138\u2013149.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(102) Alt KW, Knipper C, Peters D, M\u00fcller W, Maurer A-F, Kollig I, M\u00fcller C, Karimnia S, Brandt G, Roth C, Rosner M, Mende B, <strong>Sch\u00f6ne BR<\/strong>, Vida T, von Freeden U 2014. Lombards on the move \u2013 An integrative study of the Migration Period cemetery of Sz\u00f3l\u00e1d, Hungary. PLOS One 9, e110793.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(101) Holland HA, <strong>Sch\u00f6ne<\/strong><strong> BR<\/strong>, Marali S and Jochum KP 2014. History of bioavailable lead and iron in the Greater North Sea and Iceland during the last millennium a bivalve sclerochronological reconstruction. Marine Pollution Bulletin 87, 104\u2013116.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(100) Wacker U, Fiebig J, <strong>Sch\u00f6ne BR<\/strong>, Bahr A, Friedrich O, T\u00fctken T, Gischler E and Joachimski MM 2014. Empirical calibration of the clumped isotope paleothermometer using calcites of various origins. Geochimica et Cosmochimica Acta 121, 127\u2013144.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(99) Burchell M, Betts M, Patton A.K. and <strong>Sch\u00f6ne BR<\/strong> 2014. Preliminary analysis of stable oxygen isotopes and shell growth in the soft-shelled clam <em>Mya arenaria<\/em>: Implications interpreting seasonality and shellfish harvesting in Port Joli, Nova Scotia. North Atlantic Archaeology 3, 93\u2013108.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(98) Riechelmann DFC, Maus M, Dindorf W,<strong> Sch\u00f6ne BR<\/strong>, Scholz D and Esper J 2014. Sensitivity of whole wood stable carbon and oxygen isotope values to milling procedures. Rapid Communications in Mass Spectrometry 28, 1371\u20131375.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(97) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong> and Branscheid R 2014. Microstructures in shells of the freshwater gastropod <em>Viviparus viviparus<\/em>: A potential sensor for temperature change? Acta Biomaterialia 10, 3911\u20133921.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(96) Holland HA, <strong>Sch\u00f6ne BR<\/strong>, Lipowski C and Esper J. 2014 Decadal climate variability of the North Sea during the last millennium reconstructed from bivalve shells (<em>Arctica islandica<\/em>). The Holocene 24, 771\u2013786. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(95) Mettam C, Johnson AL, Nunn EV and <strong>Sch\u00f6ne BR<\/strong> 2014. Stable isotope (\u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C) sclerochronology of Callovian (Middle Jurassic) bivalves (<em>Gryphaea<\/em> (<em>Bilobissa<\/em>) <em>dilobotes<\/em>) and belemnites (<em>Cylindroteuthis<\/em> <em>puzosiana<\/em>) from the Peterborough Member of the Oxford Clay Formation (Cambridgeshire, England): evidence of palaeoclimate, water depth and belemnite behaviour. Palaeogeography, Palaeoclimatology, Palaeoecology 399, 187\u2013201.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(94) Burchell M, Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Cannon A and Schwarcz HP 2014. Biogeochemical signatures of archaeological shells: Implications for interpreting seasonality at shell midden sites using high-resolution stable isotope sclerochronology. In: M Roksandic, S Mendon\u00e7a, S Eggers, M Burchell and D Klokler (Eds), The Cultural Dynamics of Shell-Matrix Sites. University of New Mexico Press, 241\u2013249.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(93) <strong>Sch\u00f6ne BR<\/strong>, Burchell M, Brombacher LC and Orchard TJ 2020. Sclerochronological implications for seasonal settlements on Haida Gwaii during the late pre-contact era. In: Meyer C, Held P, Knipper C, Nicklisch N (Eds.), Der Zahn der Zeit. Mensch und Kultur im Spiegel interdisziplin\u00e4rer Forschung. Festschrift f\u00fcr Kurt W. Alt. Ver\u00f6ffentlichungen des Landesamtes f\u00fcr Denkmalpflege und Arch\u00e4ologie Sachsen-Anhalt 77, 249\u2013257.     <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(92) Yan L, <strong>Sch\u00f6ne BR<\/strong>, Schengrong L and Yan Y 2014. Shells of <em>Paphia undulata<\/em> (Bivalvia) from the South China Sea as potential proxy archives of the East Asian summer monsoon \u2013 a sclerochronological calibration study. Journal of Oceanography 70, 35\u201344.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(91) Shirai K, <strong>Sch\u00f6ne BR<\/strong>, Miyaji T, Radermacher P, Krause RA Jr and Tanabe K 2014. Assessment of the mechanism of elemental incorporation into bivalve shells (<em>Arctica islandica<\/em>) based on elemental distribution at the ultrastructural scale. Geochimica et Cosmochimica Acta 126, 307\u2013320.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(90) Foley SF, Gronenborn D, Andreae MO, Kadereit JW, Esper J, Scholz D, P\u00f6schl U, Jacob DE, <strong>Sch\u00f6ne BR<\/strong>, Schreg R, V\u00f6tt A, Jordan D, Lilieveld J, Weller CG, Alt KW, Gaudzinski-Windheuser S, Bruhn K-C, Sirocko F, H Tost and Crutzen PJ 2013. The Palaeoanthropocene \u2013 The beginnings of anthropogenic environmental change. Anthropocene 3, 83\u201388.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(89) Quinn TM and <strong>Sch\u00f6ne BR<\/strong> 2013. Corals, sclerosponges and mollusks. In: SA Elias and C Mock (Eds), Encyclopedia of Quaternary Science. 2<sup>nd<\/sup> ed. Elsevier, 795\u2013799. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(88) <strong>Sch\u00f6ne BR<\/strong> 2013. <em>Arctica islandica<\/em> (Bivalvia): A unique paleoenvironmental archive of the northern North Atlantic Ocean. Global and Planetary Change 111, 199\u2013225. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(87) Wacker U, Fiebig J and <strong>Sch\u00f6ne BR<\/strong> 2013. Clumped isotope analysis of carbonates: comparison of two different acid digestion techniques. Rapid Communications in Mass Spectrometry 27, 1631\u20131642.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(86) Gischler E, Thomas AL, Droxler AW, Webster JM, Yokoyama Y and <strong>Sch\u00f6ne BR <\/strong>2013. Microfacies and diagenesis of older Pleistocene reefal deposits, Great Barrier Reef, Australia (IODP 325): A quantitative approach. Sedimentology 60, 1432\u20131466.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(85) Burchell M, Hallmann N, Martindale A, Cannon A and<strong> Sch\u00f6ne BR <\/strong>2013. Seasonality and intensity of shellfish harvesting in the north coast of British Columbia. Journal of Coastal and Island Archaeology 8, 152\u2013169.  <em><u><\/u><\/em><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(84) Burchell M, Cannon A, Hallmann N, Schwarcz H and <strong>Sch\u00f6ne BR <\/strong>2013. Refining estimates for the season of shellfish collection on the Pacific Northwest Coast: Applying high-resolution stable oxygen isotope analysis and sclerochronology. Archaeometry 55, 258\u2013267.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(83) Knipper C, Peters D, Meyer C, Maurer A-F, Muhl A, <strong>Sch\u00f6ne BR<\/strong> and Alt KW 2013. Dietary reconstruction in Migration Period Central Germany: a carbon and nitrogen isotope study. Archaeological and Anthropological Sciences 5, 17\u201332.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(82)<strong> Sch\u00f6ne BR<\/strong> and Gillikin DP 2013. Unraveling environmental histories from skeletal diaries &#8211; Advances in sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 1\u20135.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(81) <strong>Sch\u00f6ne BR<\/strong>, Radermacher P, Zhang Z and Jacob DE 2013. Crystal fabrics and element impurities (Sr\/Ca, Mg\/Ca, and Ba\/Ca) in shells of <em>Arctica islandica<\/em> \u2013 Implications for paleoclimate reconstructions. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 50\u201359.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(80) Lohmann G and <strong>Sch\u00f6ne BR<\/strong> 2013. Climate signatures on decadal to interdecadal time scales as obtained from mollusk shells (<em>Arctica islandica<\/em>) from Iceland. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 152\u2013162.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(79) Hallmann N, Burchell M, Martindale A, Brewster N and <strong>Sch\u00f6ne BR<\/strong> 2013. Holocene climate and cultural changes at the Dundas Islands Group, northern British Columbia, Canada \u2013 A bivalve sclerochronological approach. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 163\u2013172.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(78) Burchell M, Cannon A, Hallmann N, Schwarcz HP and <strong>Sch\u00f6ne BR <\/strong>2013. Inter-site variability in the season of shellfish collection on the Central Coast of British Columbia. Journal of Archaeological Science 40, 626\u2013636.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(77) Yan L, <strong>Sch\u00f6ne BR<\/strong> and Arkhipkin A 2012. <em>Eurhomalea exalbida<\/em> (Bivalvia): a faithful recorder of climate in southern South America? Palaeogeography, Palaeoclimatology, Palaeoecology 250\u2013252, 91\u2013100. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(76) Maurer A-F, Galer SJG, Knipper C, Beierlein L, Nunn EV, Peters D, T\u00fctken T, Alt KW and <strong>Sch\u00f6ne BR<\/strong> 2012. Bioavailable <sup>87<\/sup>Sr\/<sup>86<\/sup>Sr in different environmental samples \u2013 Effects of anthropogenic contamination and implications for isoscapes in past migration studies. Science of the Total Environment 433, 216\u2013229.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(75) <strong>Sch\u00f6ne BR<\/strong> and Surge DM. 2012. Bivalve sclerochronology and geochemistry. In: Paul A Selden (Ed), Treatise of Invertebrate Paleontology, Treatise Online 46, 1\u201324, Part N (Mollusca, Bivalvia), Revised, Volume 1, Chapter 14. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(74) Knipper C, Maurer A-F, Peters D, Meyer C, Brauns M, Galer SJG, von Freeden U,<strong> Sch\u00f6ne B<\/strong>, Meller H and Alt KW 2012. Mobility in Thuringia or mobile Thuringians: A strontium isotope study from early medieval Central Germany. In: Kaiser E, Burger J and Schier W (Eds), Population dynamics in prehistory and early history. New approaches using stable isotopes and genetics. TOPOI 5. Berlin Studies of the Ancient World, 293\u2013317 (doi:10.1515\/9783110266306.287).<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(73) Ivany LC, Brey T, Huber M, Buick DP and <strong>Sch\u00f6ne BR<\/strong> 2011. El Ni\u00f1o in the Eocene greenhouse recorded by fossil bivalves and wood from Antarctica. Geophysical Research Letters 38, L16709 (doi:10.1029\/2011GL048635).<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(72) Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Irvine GV, Burchell M, Cokelet ED and Hilton M 2011. An improved understanding of the Alaska Coastal Current: The application of a bivalve growth-temperature model to reconstruct freshwater-influenced paleoenvironments. Palaios 26, 346\u2013363.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(71) Torres ME, Zima D, Falkner KK, Macdonald RW, O&#8217;Brian M, <strong>Sch\u00f6ne BR<\/strong> and Siferd T 2011. Hydrographic changes in Nares Strait (Canadian Arctic Archipelago) in recent decades based on \u03b4<sup>18<\/sup>O profiles of bivalve shells. Arctic Journal 64, 45\u201358.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(70) Wanamaker AD Jr, Kreutz KJ,<strong> Sch\u00f6ne BR<\/strong> and Introne DS 2011. Gulf of Maine shells reveal changes in seawater temperature seasonality during the Medieval Climate Anomaly and the Little Ice Age. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 43\u201351.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(69) <strong>Sch\u00f6ne BR<\/strong>, Zhang Z, Radermacher P, Th\u00e9bault J, Jacob D, Nunn EV and Maurer A-F 2011. Sr\/Ca and Mg\/Ca ratios of ontogenetically old, long-lived bivalve shells (<em>Arctica islandica<\/em>) and their function as paleotemperature proxies. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 52\u201364.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(68) <strong>Sch\u00f6ne BR<\/strong>, Wanamaker AD Jr, Fiebig J, Th\u00e9bault J and Kreutz KJ 2011. Annually resolved \u03b4<sup>13<\/sup>C<sub>shell <\/sub>chronologies of long-lived bivalve mollusks (<em>Arctica islandica<\/em>) reveal oceanic carbon dynamics in the temperate North Atlantic during recent centuries. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 31\u201342.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(67) Williams M, Nelson A, Smellie J, Leng M, Jarram D, Johnson A, Haywood A, Peck V, Zalasiewicz J, Bennett C and <strong>Sch\u00f6ne BR<\/strong> 2010. Sea ice extent and seasonality for the Early Pliocene northern Weddell Sea. Palaeogeography, Palaeoclimatology, Palaeoecology 292, 306\u2013318.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(66) <strong>Sch\u00f6ne BR<\/strong>, Zhang Z, Jacob D, Gillikin DP, T\u00fctken T, Garbe-Sch\u00f6nberg D, McConnaughey T and Soldati A 2010. Effect of organic matrices on the determination of the trace element chemistry (Mg, Sr, Mg\/Ca, Sr\/Ca) of aragonitic bivalve shells (<em>Arctica islandica<\/em>) \u2013 comparison of ICP-OES and LA-ICP-MS data. Geochemical Journal 44, 23\u201337.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(65) Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Hallmann N, Barth M and Nunn EV 2009. Investigation of Li\/Ca variations in aragonitic shells of the ocean quahog <em>Arctica islandica<\/em>, northeast Iceland. Geochemistry, Geophysics, and Geosystems 10, Q12008, doi:10.1029\/2009GC002789 (15pp.). <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(64) Johnson ALA, Hickson JA, Bird A, <strong>Sch\u00f6ne BR<\/strong>, Balson PS, Heaton THE and Williams M 2009. Comparative sclerochronology of modern and mid-Pliocene (c. 3.5 Ma) <em>Aequipecten opercularis<\/em> (Mollusca, Bivalvia): an insight into past and future climate change in the north-east Atlantic region. Palaeogeography, Palaeoclimatology, Palaeoecology 284, 164\u2013179.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(63) Radermacher P, <strong>Sch\u00f6ne BR<\/strong>, Gischler E, Oschmann W, Th\u00e9bault J and Fiebig J 2009. Sclerochronology \u2013 a highly versatile tool for mariculture and reconstruction of life history traits of the queen conch, <em>Strombus gigas<\/em> (Gastropoda). Aquatic Living Resources 22, 307\u2013318.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(62) Hallmann N, Burchell M, <strong>Sch\u00f6ne BR<\/strong>, Irvine GV and Maxwell D 2009. High-resolution sclerochronological analysis of the bivalve mollusk <em>Saxidomus gigantea<\/em> from Alaska and British Columbia: techniques for revealing environmental archives and archaeological seasonality. Journal of Archaeological Science 36, 2353\u20132364.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(61) Powell MG, <strong>Sch\u00f6ne BR<\/strong> and Jacob DE 2009. Tropical marine climate during the late Paleozoic ice age using trace element analyses of brachiopods. Palaeogeography, Palaeoclimatology, Palaeoecology 280, 143\u2013149.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(60) Hetzinger S, Halfar J, Kronz A, Steneck RS, Adey W, Lebendnik A and <strong>Sch\u00f6ne BR<\/strong> 2009. High-resolution Mg\/Ca ratios in a coralline red alga as a proxy for Bering Sea temperature variations from 1902 to 1967. Palaios 24, 406\u2013412.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"><a><\/a><a>(59) <\/a>Butler PG, Richardson C, Scourse JD, Witbaard R, <strong>Sch\u00f6ne BR<\/strong>, Fraser NM, Wanamaker AD Jr, Harris I and Robertson I 2009. Accurate increment identification and the spatial extent of the common signal in five <em>Arctica islandica<\/em> chronologies from the Fladen Ground, northern North Sea. Paleoceanography 24, PA2210 (doi:10.1029\/2008PA001715). <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(58) Martindale A, Letham B, McLaren D, Archer D, Burchell M and <strong>Sch\u00f6ne BR<\/strong> 2009. Mapping of subsurface shell midden components through percussion coring: examples from the Dundas Islands. Journal of Archaeological Science 36, 1565\u20131575.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(57) Soldati AL, Jacob DE, <strong>Sch\u00f6ne BR<\/strong>, Bianchi MM and Hajduk A 2009. Seasonal periodicity of growth and composition in valves of <em>Diplodon chilensis patagonicus <\/em>(D\u2019Orbigny 1935). Journal of Molluscan Studies 75, 75\u201381.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(56) Rodland DL, <strong>Sch\u00f6ne BR<\/strong>, Baier S, Zhang Z, Dreyer W and Page NA 2009. Changes in gape frequency, siphon activity and thermal response in the freshwater bivalves <em>Anodonta cygnea<\/em> and <em>Margaritifera falcata<\/em>. Journal of Molluscan Studies 75, 51\u201357.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(55) <strong>Sch\u00f6ne BR <\/strong>and Fiebig J, 2009. Seasonality in the North Sea during the Aller\u00f8d and Late Medieval Climate Optimum using bivalve sclerochronology. International Journal of Earth Sciences 98, 83\u201398.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(54) Dunca E, Mutvei H, G\u00f6ransson P, M\u00f6rth C-M,<strong> Sch\u00f6ne BR<\/strong>, Whitehouse MJ, Elfman M &amp; Baden SP, 2009. Using ocean quahog (<em>Arctica islandica<\/em>) shells to reconstruct palaeoenvironment in \u00d6resund, Kattegat and Skaggerak, Sweden. International Journal of Earth Sciences 98, 3\u201317.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(53) Wanamaker AD Jr, Kreutz KJ, <strong>Sch\u00f6ne BR<\/strong>, Maasch KA, Pershing A, Borns HW, Introne DS and Feindel S, 2009. A late Holocene paleo-productivity record in the Western Gulf of Maine, USA, inferred from growth histories of the long-lived ocean quahog (<em>Arctica islandica<\/em>). International Journal of Earth Sciences 98, 19\u201329.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(52) Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Strom A and Fiebig J 2008. An intractable climate archive &#8211; Sclerochronological and shell oxygen isotope analyses of the Pacific geoduck, <em>Panopea abrupta <\/em>(bivalve mollusk) from Protection Island (Washington State, USA. Palaeogeography, Palaeoclimatology, Palaeoecology 269, 115\u2013126.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(51) Nielsen JK, Helama S and<strong> Sch\u00f6ne BR<\/strong>, 2008. Shell growth history of geoduck clam (<em>Panopea abrupta<\/em>) in Parry Passage, British Columbia, Canada &#8211; temporal variation in annuli and the Pacific Decadal Oscillation. Journal of Oceanography 64, 951\u2013960.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(50) Owen EF, Wanamaker AD Jr, Feindel SC, <strong>Sch\u00f6ne BR<\/strong> and Rawson PD, 2008. Stable carbon and oxygen isotope fractionation in bivalve (<em>Placopecten magellanicus<\/em>) larval aragonite. Geochimica et Cosmochimica Acta 72, 4687\u20134698.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(49) <strong>Sch\u00f6ne BR<\/strong>, 2008. The curse of physiology \u2013 Challenges and opportunities in the interpretation of geochemical data from mollusk shells. Geo-Marine Letters 28, 269\u2013285.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(48) Wanamaker AD Jr, Kreutz KJ,<strong> Sch\u00f6ne BR<\/strong>, Pettigrew N, Borns HW, Introne DS, Belknap D, Maasch KA and Feindel S 2008. Coupled North Atlantic slopewater forcing on Gulf of Maine temperatures over the past millennium. Climate Dynamics 31, 183\u2013194.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(47) Fenger T, Surge D, <strong>Sch\u00f6ne B<\/strong> and Milner N 2007. Sclerochronology and geochemical variation in limpet shells (<em>Patella vulgata<\/em>): A new archive to reconstruct Holocene coastal sea surface temperature. Geochemistry, Geophysics, and Geosystems 8, Q07001, doi:10.1029\/2006GC001488. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(46) Halfar J, Steneck R, <strong>Sch\u00f6ne B<\/strong>, Moore GWK, Joachimski M, Kronz A, Fietzke J and Estes J 2007. Coralline alga reveals first marine record of subarctic North Pacific climate change. Geophysical Research Letters 34, L07702, doi:10.1029\/2006GL028811.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(45) Quinn TM and <strong>Sch\u00f6ne BR<\/strong> 2007. Corals, sclerosponges and mollusks. In: SA Elias (Ed), Encyclopedia of Quaternary Science. 1<sup>st<\/sup> ed. Elsevier, 1646\u20131652. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(44) Miyaji T, Tanabe K and <strong>Sch\u00f6ne BR<\/strong> 2007. Environmental controls on daily shell growth of <em>Phacosoma japonicum <\/em>(Bivalvia: Veneridae) from Japan. Marine Ecology \u2013 Progress Series 336, 141\u2013150.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(43) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Wehrmann A, Heidel B, Oschmann W, Zhang Z, Fiebig J and Beck L 2007. Combined sclerochronologic and oxygen isotope analysis of gastropod shells (<em>Gibbula cineraria<\/em>, North Sea): life-history traits and utility as a high-resolution environmental archive for kelp forests. Marine Biology 150, 1237\u20131252.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(42) Helama S, <strong>Sch\u00f6ne BR<\/strong>, Kirchhefer AJ, Nielsen JK and Rodland DL 2007. Compound response of marine and terrestrial ecosystems to varying climate: pre-anthropogenic perspective from bivalve shell growth increments and tree-rings. Marine Environmental Research 63, 185\u2013199.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(41) <strong>Sch\u00f6ne BR<\/strong>, Page NA, Rodland DL, Fiebig J, Baier S, Pfeiffer M, Helama S and Oschmann W 2007. ENSO-coupled precipitation records (1959\u20132004) based on shells of freshwater bivalve mollusks (<em>Margaritifera falcata<\/em>) from British Columbia. International Journal of Earth Sciences 96, 525\u2013540.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(40) Dunca E, Doguzhaeva L,<strong> Sch\u00f6ne BR<\/strong> and van de Schootbrugge B 2006. Growth patterns in rostra of the Middle Jurassic belemnite <em>Megateuthis giganteus<\/em>: controlled by the moon? Acta Universitatis Carolinae Geologica 49, 109\u2013117 (Prague, ISSN 0001-7132).  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(39) Helama S, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Dunca E 2006. Constructing long-term proxy series for aquatic environments with absolute dating control using a sclerochronological approach: introduction and advanced applications. Marine and Freshwater Research 57, 591\u2013599.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(38) Rodland DL, <strong>Sch\u00f6ne BR<\/strong>, Helama S, Nielsen JK and Baier S 2006. A clockwork mollusc: ultradian rhythms in bivalve activity revealed by digital photography. Journal of Experimental Marine Biology and Ecology 334, 316\u2013332.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(37) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Surge DM, Fiebig J, Gillikin DP, Baier SM and Goewert A 2006. Comment on \u201cStable carbon isotopes in freshwater mussel shells: Environmental record or marker for metabolic activity?\u201d by J. Geist et al.  (2005). Geochimica et Cosmochimica Acta 70, 2658\u20132661.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(36) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Fiebig J, Oschmann W, Goodwin DH, Flessa KW and Dettman DL 2006. Reliability of multi-taxon, multi-proxy reconstructions of environmental conditions from accretionary biogenic skeletons. Journal of Geology 114, 267\u2013285.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(35) <strong>Sch\u00f6ne BR<\/strong> and Giere O 2005. Growth increments and stable isotope variation in shells of the deep-sea hydrothermal vent bivalve mollusk <em>Bathymodiolus brevior <\/em>from the North Fiji Basin, Pacific Ocean. Deep-Sea Research I 52, 1896\u20131910.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(34) Fiebig J, <strong>Sch\u00f6ne BR<\/strong> and Oschmann W 2005. High precision oxygen and carbon isotope analysis of very small (10\u201330\u00b5g) amounts of carbonates using CF-IRMS. Rapid Communications in Mass Spectrometry 19, 2355\u20132358.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(33) <strong>Sch\u00f6ne BR<\/strong> and Surge D 2005. Looking back over Skeletal Diaries \u2013 High-resolution Environmental Reconstructions from Accretionary Hard Parts of Aquatic Organisms. Palaeogeography, Palaeoclimatology, Palaeoecology 228, 1\u20133.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(32)<strong> Sch\u00f6ne BR<\/strong>, Fiebig J, Pfeiffer M, Gle\u00df R, Hickson J, Johnson ALA, Dreyer W and Oschmann W 2005. Climate records from a bivalved Methuselah (<em>Arctica islandica<\/em>, Mollusca; Iceland). Palaeogeography, Palaeoclimatology, Palaeoecology 228, 130\u2013148.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(31) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Fiebig J and Pfeiffer M 2005. Mutvei\u2019s solution: an ideal agent for resolving microgrowth structures of biogenic carbonates. Palaeogeography, Palaeoclimatology, Palaeoecology 228, 149\u2013166.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(30) Dunca E, <strong>Sch\u00f6ne BR<\/strong> and Mutvei H 2005. Freshwater bivalves tell of past climates: But how clearly do shells from polluted rivers speak? Palaeogeography, Palaeoclimatology, Palaeoecology 228, 43\u201357.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(29) <strong>Sch\u00f6ne BR<\/strong>, Hickson J and Oschmann W 2005. Reconstruction of subseasonal environmental conditions using bivalve mollusk shells \u2013 a graphical model. GSA, Special Papers 395, 21\u201331.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(28) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Mutvei H, Baier S and Fiebig J 2005. Scandinavian climate since the late 18th century reconstructed from shells of bivalve mollusks. Zeitschrift der Deutschen Gesellschaft f\u00fcr Geowissenschaften 156, 501\u2013516.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(27) <strong>Sch\u00f6ne BR<\/strong>, Pfeiffer M, Pohlmann T and Siegismund F 2005. A seasonally resolved bottom water temperature record for the period of AD 1866\u20132002 based on shells of <em>Arctica islandica <\/em>(Mollusca, North Sea). International Journal of Climatology 25, 947\u2013962.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(26) <strong>Sch\u00f6ne BR<\/strong>, Houk SD, Freyre Castro AD, Fiebig J, Kr\u00f6ncke I, Dreyer W and Oschmann W 2005. Daily growth rates in shells of <em>Arctica islandica<\/em>: Assessing subseasonal environmental controls on a long-lived bivalve mollusk. Palaios 20, 78\u201392.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(25) <strong>Sch\u00f6ne BR<\/strong>, Freyre Castro AD, Fiebig J, Houk SD, Oschmann W and Kr\u00f6ncke I 2004. Sea surface water temperatures over the period 1884\u20131983 reconstructed from oxygen isotope ratios of a bivalve mollusk shell (<em>Arctica islandica<\/em>, southern North Sea). Palaeogeography, Palaeoclimatology, Palaeoecology 212, 215\u2013232.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(24) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Mutvei H and Norlund U 2004. A 217-year record of summer air temperature reconstructed from freshwater pearl mussels (<em>M. margarifitera<\/em>, Sweden). Quaternary Science Reviews 23, 1803\u20131816 + 2057.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(23) <strong>Sch\u00f6ne BR<\/strong>, Oschmann W, Tanabe K, Dettman D, Fiebig J, Houk SD and Kanie Y, 2004. Holocene seasonal environmental trends at Tokyo Bay, Japan, reconstructed from bivalve mollusk shells &#8211; implications for changes in the East Asian monsoon and latitudinal shifts of the Polar Front. Quaternary Science Reviews 23, 1137\u20131150.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(22) Goodwin DH, Flessa KW, T\u00e9llez-Duarte MA, Dettman DL, <strong>Sch\u00f6ne BR<\/strong> and Avila-Serrano GA, 2004. Detecting time-averaging and spatial mixing using oxygen isotope variation: A case study. Palaeogeography, Palaeoclimatology, Palaeoecology 205, 1\u201321.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(21) Dettman DL, Flessa KW, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong> and Goodwin DH, 2004. The use of oxygen isotope variation in shells of estuarine mollusks as a quantitative record of seasonal and annual Colorado River discharge. Geochimica et Cosmochimica Acta 68, 1253\u20131263.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(20) <strong>Sch\u00f6ne BR<\/strong>, Oschmann W, Kr\u00f6ncke I, Dreyer W, Janssen R, Rumohr H, Houk SD, Freyre Castro AD, Dunca E and R\u00f6ssler J, 2003. North Atlantic Oscillation dynamics recorded in shells of a long-lived bivalve mollusk. Geology 31, 1037\u20131040.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(19) <strong>Sch\u00f6ne BR<\/strong>, Kr\u00f6ncke I, Houk SD, Freyre Castro AD and Oschmann W, 2003. The cornucopia of chilly winters: ocean quahog (<em>Arctica islandica<\/em> L., Mollusca) master chronology reveals bottom water nutrient enrichment during colder winters (North Sea). Senckenbergiana Maritima 32, 165\u2013175.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(18) <strong>Sch\u00f6ne BR<\/strong>, Flessa KW, Dettman DL and Goodwin DH, 2003. Upstream dams and downstream clams: Growth rates of bivalve mollusks unveil impact of river management on estuarine ecosystems (Colorado River delta, Mexico). Estuarine, Coastal and Shelf Science 58, 715\u2013726.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(17) Goodwin DH, <strong>Sch\u00f6ne BR<\/strong> and Dettman DL, 2003. Resolution and fidelity of oxygen isotopes as paleotemperature proxies in bivalve mollusk shells: models and observations. Palaios 18, 110\u2013125.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(16) <strong>Sch\u00f6ne BR<\/strong>, Tanabe K, Dettman DL and Sato S, 2003. Environmental controls on shell growth rates and \u03b4<sup>18<\/sup>O of the shallow-marine bivalve mollusk <em>Phacosoma japonicum<\/em> in Japan. Marine Biology 142, 473\u2013485.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(15)<strong> Sch\u00f6ne BR<\/strong>, 2003. A \u2018clam-ring\u2019 master-chronology constructed from a short-lived bivalve mollusc from the northern Gulf of California, USA. The Holocene 13, 39\u201349.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(14) <strong>Sch\u00f6ne BR<\/strong> and Bentley D, 2002. Use of HMDS (hexamethyldisilazane) to dry organic microstructures in etched bivalve mollusk and barnacle shells. The Nautilus 116, 25\u201331.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(13) <strong>Sch\u00f6ne BR<\/strong>, Lega J, Flessa KW, Goodwin DH and Dettman DL, 2002. Reconstructing daily temperatures from growth rates of the intertidal bivalve mollusk <em>Chione cortezi<\/em> (northern Gulf of California, Mexico). Palaeogeography, Palaeoclimatology, Palaeoecology 184, 131\u2013146.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(12) <strong>Sch\u00f6ne BR<\/strong>, Goodwin DH, Flessa KW, Dettman DL and Roopnarine PD, 2002. Sclerochronology and growth of the bivalve mollusks <em>Chione (Chionista) fluctifraga <\/em>and <em>C. (Chionista) cortezi<\/em> in the northern Gulf of California, Mexico. The Veliger 45, 45\u201354.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(11) <strong>Sch\u00f6ne BR<\/strong> and Schweingruber FH, 2001. Dendrochronologische Untersuchungen zur Verwaldung der Alpen am Beispiel eines inneralpinen Trockentals (Ramosch, Unterengadin, Schweiz). Botanica Helvetica 111, 151\u2013168.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(10) Goodwin DH, Flessa KW, <strong>Sch\u00f6ne BR <\/strong>and Dettman DL, 2001. Cross-calibration of daily growth increments, stable isotope variation, and temperature in the Gulf of California bivalve mollusk <em>Chione cortezi<\/em>: implications for environmental analysis. Palaios 16, 387\u2013398.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (9) <strong>Sch\u00f6ne BR<\/strong> and Schweingruber FH, 1999. Verzwergte Laubh\u00f6lzer: anatomische und morphologische Besonderheiten sowie \u00f6kologische Bedeutung. Schweizerische Zeitschrift f\u00fcr Forstwesen 150, 132\u2013141; Zurich.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (8) <strong>Sch\u00f6ne BR<\/strong>, 1999. Scleroecology: Implications for ecotypical dwarfism in oxygen-restricted environments (Middle Devonian, Rheinisches Schiefergebirge). Senckenbergiana lethaea 79, 35\u201341.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (7) <strong>Sch\u00f6ne BR<\/strong>, 1998. Anatomy, morphology, physiology and ecological significance of dwarfed trees. Proc.   Int. Conf. Dendrochron. Environ. Trends, Eurodendro 98, June17\u201321, 98, Kaunas, Lithuania: 209\u2013218; Kaunas.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (6) <strong>Sch\u00f6ne BR<\/strong> and Langenstrassen F 1998. Die \u2018Bonzeler Grenzschicht\u2019 im Typusprofil bei Lennestadt (Eifel\/Givet-Stufe, Rheinisches Schiefergebirge). Geologica et Palaeontologica 32, 127\u2013139.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (5) <strong>Sch\u00f6ne BR<\/strong>, Basse M and May A, 1998. Korrelationen des Eifelium\/Givetium-Grenzbereichs im Rheinischen Schiefergebirge. Senckenbergiana lethaea 77, 233\u2013242.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (4) <strong>Sch\u00f6ne BR<\/strong>, 1997. Der <em>otomari<\/em>-Event und seine Auswirkungen auf die Fazies des Rhenoherzynischen Schelfs (Devon, Rheinisches Schiefergebirge). G\u00f6ttinger Arbeiten zur Geologie und Pal\u00e4ontologie 70, 1\u2013140.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (3) <strong>Sch\u00f6ne BR<\/strong> and Schubert M, 1996. Gekr\u00fcmmte Dacryoconariden aus der Odershausen-Formation (Mittel-Devon; \u201cBlauer Bruch\u201d, Bad Wildungen, Ense). Senckenbergiana lethaea 76, 121\u2013131.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\"> (2) <strong>Sch\u00f6ne BR<\/strong>, 1996. Allochrone Variationen bei <em>Nowakia (Nowakia)<\/em> ex gr. <em>otomari<\/em> Bou\u010dek &amp; Prantl 1959 (Dacryoconarida, Rheinisches Schiefergebirge). Neues Jahrbuch zur Geologie und Pal\u00e4ontologie, Monatshefte 1996, 651\u2013671.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">Sch\u00f6ne BR, 1996. V<em>iriatellina holochlidana<\/em> n.sp. aus der Oderhausen-Formation von Bad Wildungen (Dacryoconarida, Mittel-Devon, Kellerwald). Neues Jahrbuch zur Geologie und Pal\u00e4ontologie, Monatshefte 1996, 161\u2013168.   <\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><em><strong>Other publications:<\/strong> <\/em><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(14) Tian Y, Koncz I, Farag\u00f3 N, Knipper C, Friedrich R, Vyas D, Samu L, Spekker O, Szeniczey T, Hajdu T, Mende B, Tomka P, Pap I, Czig\u00e1ny D, Radzeviciute R, Traverso L, Gnecchi-Ruscone G, Francalacci P, <strong>Sch\u00f6ne B<\/strong>, T\u00f3th G, Sz\u00e9cs\u00e9nyi-Nagy A, le Roux P, Alt K, Hofmanov\u00e1 Z, Pohl W, Krause J, Vida T and Geary P 2025. Unveiling the complexity of post-Roman polity formation using ancient DNA. bioRxiv: doi:10.1101\/2025.08.18.670760<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(13) Lin G, Fang Y, <strong>Sch\u00f6ne BR<\/strong>, Rogers K, Wu H and Feng J 2024-2025. Applications of multiple isotopes in evaluating ecosystem health. Ecosystem Health and Sustainability 10, 201, 246, 252 + 281; 11, 298 + 393.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(12) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ and Goolaerts S 2021. Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea Basin, and its implications. Climate of the Past, Discussions, cp-2021-142.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(11) Saulsbury J, Moss D, Ivany L, Kowalewski M, Lindberg D, Gillooly J, Heim N, McClain C, Payne J, Roopnarine P, <strong>Schoene B<\/strong>, Goodwin D, Finnegan S 2019. Data from: Evaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates. Dryad Digital Repository.   https:\/\/doi.org\/10.5061\/dryad.t32st70<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(10) Grimm KI and <strong>Sch\u00f6ne BR <\/strong>2018. Chapter 39. MAINZ: Paleontological Collections of the University of Mainz (Geoscientific Collections). In: LA Beck and U Joger (Eds), Paleontological Collections of Germany, Austria and Switzerland. The History of Life of Fossil Organisms at Museums and Universities. Springer (ISBN: 978-3-319-77400-8), 403\u2013408.    <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(9) Milano S, Nehrke G, Wanamaker Jr AD, Ballesta-Artero I, Brey T and <strong>Sch\u00f6ne BR<\/strong> 2016. The effects of environment on <em>Arctica islandica<\/em> shell formation and architecture. Biogeosciences Dicsussions, doi:10.5194\/bg-2016\u2013462.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(8) Casella LA, Griesshaber E, Yin X, Ziegler A, Mavromatis V, M\u00fcller D, Ritter A-C, Hippler D, Harper EM, Dietzel M, Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Angiolini L and Schmahl WW 2016. Experimental diagenesis: Insights on aragonite to calcite transformation of <em>Arctica islandica<\/em> shells by hydrothermal treatment. Biogeosciences Discussions, doi:10.5194\/bg-2016\u2013355.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(7) Walliser EO, <strong>Sch\u00f6ne BR<\/strong>, T\u00fctken T, Zirkel J, Grimm KI and Pross J 2014. The bivalve <em>Glycymeris planicostalis<\/em> as a high-resolution paleoclimate archive for the Rupelian (early Oligocene) of Central Europe. Climate of the Past, Discussions 10, 4085\u20134127 + Comment (2015) Climate of the Past, Discussions 10, C2168.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(6) <strong>Sch\u00f6ne BR<\/strong> and Surge D 2013. Bivalve shells &#8211; ultra high-resolution paleoclimate archives. PAGES magazine 22, 20\u201321.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(5) Grimm MC, Grimm KI, <strong>Sch\u00f6ne BR<\/strong>, Kraus J and Kraus K 2013. Herkunft der Kalksteine f\u00fcr das sp\u00e4tromanische Querhaus am Mainzer Dom. Metalla.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(4) <strong>Sch\u00f6ne BR<\/strong> 2011. Muschelschalen als Archive: Neue Einblicke in Klima und Umwelt der Vergangenheit. FOSSILIEN 28, 335\u2013345.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(3) Zirkel J and <strong>Sch\u00f6ne BR<\/strong> 2010. Fossile Funde aus dem Kasseler Meeressand. Hessen Arch\u00e4ologie 2009, Jahrbuch f\u00fcr Arch\u00e4ologie und Pal\u00e4ontologie in Hessen. Konrad Theiss Verlag GmbH, Stuttgart 2010, 18\u201319.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(2) <strong>Sch\u00f6ne BR<\/strong> and Nunn EV 2010. 2<sup>nd<\/sup> International Sclerochronology Conference, 24\u201328<sup>th<\/sup> July 2010 \u2013 Program and Abstracts. Terra Nostra 2010\/3, 174 pp, Berlin (ISSN 0946-8978). <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">(1)<strong> Sch\u00f6ne BR<\/strong> 2001. Clam-ring time-series: a new method for high-resolution environmental reconstruction. Western Society of Malacologists Annual Report 34, 39\u201344.  <\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n\n\n<\/jgu-base-tabsitem>\n\n<jgu-base-tabsitem react-props=\"{\n    &quot;title&quot;: &quot;Presentations&quot;,\n    &quot;slug&quot;: &quot;talks&quot;,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;customSlug&quot;: false\n}\">\n    \n\n<p class=\"has-normal-font-size wp-block-paragraph\">Excerpt:<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">\u00bbMollusk shells \u2013 High-resolution ecohydrological archives\u00ab. Invited talk. Auerinstitut Rastatt, 24. Feb.   2026.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Concha esclerocronologia: Extracting data on past climate &amp; cultural practices from shells&#8221;. Invited talk. University of the Joinville Region (Univille), 3 April 2025, Joinville, Brazil.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Paleoecological studies with mollusk shells \u2013 A sclerochronological approach&#8221;. Keynote. 9th China National Conference on Stable Isotope Ecology, 24\u201327 Nov. 2023, Xiamen, China.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Paleoenvironmental studies with mollusk shells \u2013 A sclerochronological approach&#8221;. Invited talk. 1st Sino-German Mobility Program Workshop, 6\u201310 Nov. 2023, Xi\u2019an, China.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Protein amino acid-specific nitrogen isotope analysis of bivalve shells \u2013 A novel high-resolution approach to assess past changes in marine ecosystems&#8221;. Bivalves &#8211; Where are we going, 5\u20138 Sep. 2023, Cambridge, UK.  <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Weighting of high-resolution data is crucial to avoid bias caused by sample spot geometry and variations in seasonal growth rate&#8221;. 6th International Sclerochronology Conference, 22\u201325 May 2023, Tokyo, Japan. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;<em>otomari<\/em>-Event und Ausblick auf die Exkursion&#8221;. SDS-Jahrestagung, 5\u20137 May 2023, Plettenberg. <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Can element chemical impurities in aragonitic shells of bivalves serve as proxies for environmental variability?&#8221; Invited talk. PAGES Q-MARE Workshop &#8220;Pre-industrial humans, climates and marine ecosystems in education and research&#8221;, 23\u201327 Jan. 2023 (virtual)   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Compound-specific isotope analysis meets bivalve sclerochronology \u2013 New avenues for paleoecological research&#8221;. Keynote. 8th China National Conference on Stable Isotope Ecology, 9\u201310 Nov. 2022, Fuzhou, China.   <\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Technical capabilities of extracting environmental data from biogenic hard parts.&#8221; Keynote. Virtual International Sclerochronology Conference (vISC) 13\u201315 Sep.   2022.<\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">&#8220;Ontogenetic \u03b4<sup>15<\/sup>N trends and multidecadal variability in shells of the bivalve mollusk, <em>Arctica islandica<\/em>&#8220;. AGU Ocean Sciences Meeting, 24 Feb \u2013 4 March 2022 (virtual). <\/p>\n\n\n<\/jgu-base-tabsitem>\n\n<jgu-base-tabsitem react-props=\"{\n    &quot;title&quot;: &quot;Teaching&quot;,\n    &quot;slug&quot;: &quot;teaching&quot;,\n    &quot;align&quot;: &quot;wide&quot;,\n    &quot;customSlug&quot;: false\n}\">\n    \n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Summer Semester:<\/strong><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">09.065.091.B Paleontology 1 lecture (Compulsory, BSc Geosciences)<br\/>09.065.092.B Paleontology 1 Project Seminar (Compulsory, BSc Geosciences)<br\/>09.065.300 Field practice class on Applied Paleontology (Field Internship) (Elective, BSc Geosciences)<br\/>09.065.M501 History of the Earth and Life II Project Seminar (Compulsory, MSc Geosciences)<br\/>09.065.M548 Analytical Paleontology Project Work (Elective, MSc Geosciences, Project Seminar)<br\/>09.065.M549 Biogenic Climate and Environmental Archives (Elective, MSc Geosciences, practice class)<br\/>09.065.M550 Scientific Presentation and Text Composition (Elective, MSc Geosciences, advanced seminar)  <br\/><\/p>\n\n\n\n<p class=\"has-big-font-size wp-block-paragraph\"><strong>Winter Semester:<\/strong><\/p>\n\n\n\n<p class=\"has-normal-font-size wp-block-paragraph\">09.065.243.B Paleontology 2 Field Internship (Elective, BSc Geosciences)<br\/>09.065.M630 Collecting-Preserving-Communicating advanced seminar (Elective, BSc Geosciences)<br\/>09.065.M505 Paleoclimatology \/ Climate Archives lecture (Compulsory, MSc Geosciences)<br\/>09.065.M507 Institute Seminar (Compulsory, MSc Geosciences)<\/p>\n\n\n<\/jgu-base-tabsitem>\n\n<\/jgu-base-tabs><\/div>\n<\/div>\n\n<p class=\"has-big-font-size wp-block-paragraph\"><\/p>\n    <div style=\"display: none\">\n        \n    <\/div>","protected":false},"excerpt":{"rendered":"<p>E-Mail: bernd.schoene@uni-mainz.deTel.: +49 6131 39 24757 Institute of GeosciencesJohann-Joachim-Becher-Weg 2155128 Mainz Faculty of Natural Sciences, 1st FloorRoom 01-142\/-144<\/p>\n","protected":false},"author":1931,"featured_media":0,"parent":22229,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"categories":[133],"tags":[161],"class_list":["post-24460","page","type-page","status-publish","hentry","category-various-subpages","tag-paleontology-working-group"],"content_raw":"<!-- wp:jgu\/heading {\"index\":\"Head of the Paleontology Research Group\",\"tags\":{\"htmlTag\":\"h2\",\"classTag\":\"\",\"tag\":\"h2\"},\"heading\":\"Univ.-Prof. Dr. Bernd Sch\u00f6ne\"} \/--><!-- wp:columns {\"className\":\"\"} -->\n<div class=\"wp-block-columns\"><!-- wp:column {\"width\":\"33.33%\"} -->\n<div class=\"wp-block-column\" style=\"flex-basis:33.33%\"><!-- wp:jgu\/image {\"image\":{\"url\":null,\"id\":11857}} \/-->\n\n<!-- wp:jgu\/heading {\"color\":\"default\",\"tags\":{\"htmlTag\":\"h4\",\"classTag\":\"\",\"tag\":\"h4\"},\"heading\":\"\\u003cbr\\u003e\\u003cstrong\\u003eContact\\u003c\/strong\\u003e\"} \/-->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">E-Mail: <a href=\"mailto:bschoene@uni-mainz.de\" target=\"_blank\" rel=\"noreferrer noopener\">bernd.schoene@uni-mainz.de<\/a><br\/>Tel.: +49 6131 39 24757<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Institute of Geosciences<br\/>Johann-Joachim-Becher-Weg 21<br\/>55128 Mainz<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Faculty of Natural Sciences, 1st Floor<br\/>Room 01-142\/-144<\/p>\n<!-- \/wp:paragraph --><\/div>\n<!-- \/wp:column -->\n\n<!-- wp:column {\"width\":\"66.66%\"} -->\n<div class=\"wp-block-column\" style=\"flex-basis:66.66%\"><!-- wp:jgu\/tabs {\"stackMobile\":true,\"hasAllOpenButton\":false,\"initAllClosed\":false} -->\n<!-- wp:jgu\/tabs-item {\"title\":\"About\",\"slug\":\"about\"} -->\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Research<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">My research focuses on high-resolution reconstructions of past climates, environments and ecosystems by means of mollusk sclerochronology. During growth, mollusks (bivalves, gastropods etc.) record environmental changes in their shells in the form of variable increment widths (reflecting changes in growth rate), ultrastructure and geochemical properties including (bulk and compound-specific) stable isotopes and trace elements. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Extremely long-lived bivalves (&gt; 500 years) are of particular interest for long-term paleoclimate studies, specifically in settings for which other annually and better resolved proxy records are not available such as extratropical marine regions. Well-preserved, single fossil shells can therefore open windows into the climatic past. Furthermore, based on similar growth patterns, shells of contemporaneous specimens with overlapping life spans can be combined to form so-called master chronologies (similar to dendrochronology) that cover centuries to millennia and reflect seasonal to multi-decadal environmental dynamics during that time. For example, using numerous live-collected and fossil specimens of Arctica islandica, nearly 1000 year-long master chronologies for the NE Atlantic were constructed. These time-series reflect distinct decadal and multi-decadal oscillations in stable oxygen isotopes and shell growth, and hence ocean temperature and food availability which can be related to the North Atlantic Oscillation, Atlantic Multidecadal Variability and Atlantic Meridional Overturning Circulation. Furthermore, the shell stable carbon isotopes reflect synchronous changes of the carbon isotope signature of seawater dissolved inorganic carbon. The increased use of fossil fuels since the beginning of the industrial revolution, resulting in a shift toward lower carbon isotope values, is also recorded in the shells. Aside from that, \u03b413Cshell and Ba\/Cashell data indicate strong subseasonal to multidecadal variations of the primary production and certain Ba-bearing primary producers, respectively.       <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Short-lived bivalves can provide details on subseasonal environmental change. For example, by analyzing the daily and fortnightly growth patterns, the date of death of can be determined to the nearest week or so. Such information is of particular interest for archaeologists and anthropologists who are interested in clarifying the seasonal site occupation and subsistence patterns of indigenous peoples.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">My research also addresses the development of new and optimization of existing environmental proxies (temperature, primary production, hypoxia, nitrogen isotope baseline, food web complexity etc.). A major focus is on trace elements, shell ultrastructure and organic compounds (protein amino acid-specific isotope analysis, specifically \u03b4<sup>15<\/sup>N values). Such studies are accompanied by tank experiments during which growth conditions can be manipulated and light shed on biomineralization processes.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><a href=\"https:\/\/www.scopus.com\/authid\/detail.uri?authorId=7003744022\">Scopus<\/a>: h = 51; citations = 8,607 (26 Mar 2026; Author ID: 7003744022)<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><a href=\"http:\/\/scholar.google.de\/citations?user=Ns4FIc8AAAAJ&amp;hl=en\">Google Scholar<\/a>: h = 61; i10 = 189; citations = 12,118 (26 Mar 2026)<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><a href=\"https:\/\/research.com\/u\/bernd-r-schone\">Research.com<\/a>: D = 54 ; citations = 9,643; National rank = 142 (26 Mar 2026) <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><a href=\"https:\/\/orcid.org\/0000-0002-6879-1633\">ORCID: 0000-0002-6879-1633<\/a><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><strong>Degrees<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Habilitation \/ <em>Venia legendi<\/em>, Geosciences, University of Frankfurt, Germany, 2004<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Doctorate Degree (rer. nat., PhD), Institute and Museum of Geology and Paleontology, University of G\u00f6ttingen, Germany, 1997 (summa cum laude, with distinction)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Diploma Degree, Institute and Museum of Geology and Paleontology, University of G\u00f6ttingen, Germany, 1994 (with distinction)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><strong>Current Position<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>University Professor, Head of Paleontology, <strong>University of Mainz<\/strong>, since September 2006<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Head of the Paleontological Collection, <strong>University<\/strong><strong> of Mainz<\/strong>, since September 2006<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><strong>Employment History<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Research Associate, Research Group Leader, <strong>University of Frankfurt<\/strong>, 2002\u20132006 (Emmy-Noether Program, DFG German Research Foundation)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Research Associate (Postdoc, JSPS), Department of Earth and Planetary Science, <strong>University of Tokyo<\/strong>, Japan, 2001\u20132002<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Research Associate (Postdoc, Humboldt Foundation &amp; NSF), Department of Geosciences, <strong>University of Arizona<\/strong>, USA, 1999\u20132001<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Research Associate (Postdoc, DAAD &amp; NATO &amp; SNF), Swiss Federal Institute for Forest, Snow and Landscape Research (<strong>ETH Z\u00fcrich<\/strong>), Birmensdorf\/Zurich, Switzerland, 1998\u20131999<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Research Assistant (DFG) and PhD student (Ev. Studienwerk e.V.), Institute and Museum of Geology and Paleontology, <strong>University of G\u00f6ttingen<\/strong>, Germany, 1994\u20131997<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><strong>Memberships<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Pal\u00e4ontologische Gesellschaft (PG)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Society for Sedimentary Geology (SEPM)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>American Geophysical Union (AGU)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Subcommission on Devonian Stratigraphy (SDS)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Arbeitskreis Evolutionsbiologie im Deutschen Biologenverband (VBiO)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Editorial board<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Associate Editor of PALAIOS (since 2006)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Associate Editor of Palaeontology, Palaeogeography, Palaeoclimatology [Palaeo3] (since 2018)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Associate Editor of Nature Scientific Reports (2022)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Guest Editor of Palaeo3 #228 (2005), #373 (2013), #465 (2017), #484 (2017), #570 (2021)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Guest Editor of Estuarine, Coastal and Shelf Science #246 (2021)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Guest Editor or Limnology and Oceanography Letters #11 (2025)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Guest Editor of Ecosystem Health and Sustainability #10+11 (2024-25)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><strong>Organization of International Conferences<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>1<sup>st<\/sup> Intl Sclerochronology Conference (ISC2007), St. Petersburg, FL\/USA, 17\u201321 July 2007; co-organizer<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>2<sup>nd<\/sup> Intl Sclerochronology Conf. (ISC2010), Mainz, Germany, 24\u201330 July 2010; chair <\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>3<sup>rd<\/sup> Intl Sclerochronology Conf. (ISC2013), Caernarfon, UK, 18\u201322 May 2013; co-organizer <\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>5<sup>th<\/sup> Intl Sclerochronology Conf. (ISC2019), Split, Croatia, 17<a>\u2013<\/a>20 June 2019; co-organizer <\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>1<sup>st<\/sup> Virtual Intl Sclerochronology Conf. (vISC2022), Online, 13\u201315 Sep 2022; advisory board <\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>6<sup>th<\/sup> Intl Sclerochronology Conference (ISC2023), Tokyo, Japan, 22\u201325 Sep 2023; co-organizer<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>2<sup>nd<\/sup> <em>Tridacna<\/em> Workshop, Mainz, Germany, 6\u201310 Sep 2024; chair<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>4<sup>th<\/sup> SEACHANGE Annual Meeting, Mainz, Germany, 22\u201327 June 2025; chair<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>7<sup>th<\/sup> Intl Sclerochronology Conf. (ISC2026), St. John\u2019s, Canada, 5\u20139 May 2026; co-organizer <\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n<!-- \/wp:jgu\/tabs-item -->\n\n<!-- wp:jgu\/tabs-item {\"title\":\"Research\",\"slug\":\"research\"} -->\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Ongoing projects<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>Die Grenzen des Fossilberichtes : Analytische und experimentelle Ans\u00e4tze zum Verst\u00e4ndnis der Fossilisation \u2013 Chemische und mineralogische Ver\u00e4nderungen karbonatischer Schalen durch Fossilisationsprozesse \u2013 eine experimentelle Studie (DFG FOR 2685, 2024\u20132026)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>SEACHANGE - Quantifying the impact of major cultural transitions on marine ecosystem functioning and biodiversity (ERC Synergy, 2020\u20132027)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>A multi-archive approach to high-resolution paleoclimatic reconstructions in the Red Sea (MPGC, 2024-2027)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Shells of freshwater mussels \u2013 Hydrological archive of streamflow generation processes (DFG, 2026\u20132028)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Collaboration partner in the Emmy-Noether-Project \u201eSEAFRONT \u2013 The Climatic impacts on the Neolithic Dispersal in the Mediterranean\u201c (PI Niklas Hausmann, DFG, 2020\u20132027)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Collaboration partner in the research project \u201eShell material from Ginnerup\u201c (PI Niels N\u00f8rkj\u00e6r Johannsen, Velux Foundation, 2025\u20132026)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Collaboration partner in the research project \u201eBivalveSPEECH \u2013 Bivalve Sclerochronology \u2013 lessons from Past Ecology and Environments for the future Coastal ecosystem Health\u201c (PI Melita Peharda Uljevi\u0107, HRZZ, 2025\u20132027)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Completed Projects<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:list -->\n<ul class=\"wp-block-list\"><!-- wp:list-item -->\n<li>Hochaufl\u00f6sende Rekonstruktionen von Klima- und Umweltbedingungen im j\u00fcngsten Holoz\u00e4n aus Variationen in Wachstumsraten und geochemischen Parametern von Muschelschalen (n\u00f6rdlicher Nordatlantischer Sektor) (DFG, Emmy-Noether-Program; 2002\u20132006)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Synthesys project for Sven Baier (EU; 2005)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Climate proxy optimization - quantifying factors controlling growth, geochemistry and micro\/nanostructural design of bivalve mollusk shells (DFG, Heisenberg Program, 2007\u20132010)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Spatiotemporal high-resolution Holocene climate reconstruction in the North Pacific by means of bivalve sclerochronology (DFG, 2008\u20132011, Heisenberg Program)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Mobility and migration of the Langobards (\u201cUntersuchungen und Kartierung von Sr- und O-Isotopen zur Herkunftsbestimmung ortsfremder Personenverb\u00e4nde w\u00e4hrend des Fr\u00fchen Mittelalters - Neue Wege in der Langobardenforschung\u201d) (BMBF + IUFF, 2008-2011)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Provenience of the carbonate rocks of the Mainz Cathedral (\u201cMainzer Becken Kalkstein \u2013 Verwendung als Werkstein im Mittelalter\u201d) (2009\u20132010; Institut f\u00fcr Steinkonservierung e.V., Mainz)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Deciphering seasonal to decadal climate variability during the Oligocene: an integrated approach based on bivalve sclerochronology and palynology (DFG, 2011\u20132012)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Continuous Flow \u2013 Isotope Ratio Mass Spectrometer (CF-IRMS) (DFG+Geocycles+IUFF, 2009)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Paleoweather of the Saale\/Unstrut region during the Neolithic revolution (\u201eWetterextreme und Saisonalit\u00e4ten zur Zeit der Neolithisierung Mitteldeutschlands (Saale-Unstrut-Gebiet, Neolithikum\u2013Hallstattzeit) rekonstruiert aus Muschelschalen\u201c) (IUFF, 2009)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Polishing Machine Buehler VibroMet (IUFF, 2009)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item {\"translatedWithWPMLTM\":\"1\"} -->\n<li>2<sup>nd <\/sup> International Sclerochronology Conference (External funds, conference fees, Geocycles, IUFF; 2010)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Grants-in Aid (Palaeontological Association; 2010)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Holocene climate reconstructions in the North Pacific realm (Geocycles; 2011)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Klima und Saisonalit\u00e4t in k\u00fcstennahen Flachwasserregionen Britisch-Kolumbiens und Alaskas w\u00e4hrend der Archaischen Periode (8.000-500 BP) (IUFF; 2011\u20132012)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Grants-in Aid (Paleontological Society; 2012)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Clumped isotope thermometry applied to bivalve mollusks (DFG; 2011\u20132013; Kooperationsprojekt mit U Ffm)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Pyrolysis Inlet System for Isotope Ratio Mass Spectrometer (Geocycles, 2013)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Climate dynamics during the Upper Cretaceous (IUFF)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Mollusks from the marine Quaternary of Argentina as high-resolution paleoclimatological archives (sclerochronology and isotope geochemistry) (DFG; 2013\u20132015)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Toward quantifiable temperature reconstructions from bivalve shells (DFG; 2013\u20132015)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Deciphering seasonal to decadal climate variability during the Oligocene: an integrated approach based on bivalve sclerochronology and palynology (DFG; 2013\u20132016)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>High-resolution multiproxy reconstruction of extratropical North Atlantic climate dynamics during the last millennium (DFG; 2012\u20132015)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>ARAMACC (EU, Marie-Curie International Training Network, 2013\u20132017)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Hypoxia-Events in der Ostsee (IUFF, 2017)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Quaternary paleoclimate of southern South America \u2013 A new ultra-high-resolution approach based on shells of long-lived bivalves (MPGC; 2016\u20132019)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Inoceramid sclerochronology \u2013 Advancing Late Cretaceous climate reconstructions (DFG, 2016\u20132020)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Bivalve shell microstructures \u2013 exploring a novel marine temperature proxy (DFG, 2018\u20132022)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Tracking the history of Baltic Sea hypoxia with bivalve shells (DFG, 2019\u20132023)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Bivalve shell-based, high-resolution multi-proxy reconstruction of marine primary production \u2013 <em>Pecten maximus<\/em>, Bay of Brest (DFG-ANR, 2019\u20132023)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Chemical and structural variations of bivalve shells at the micrometer scale \u2013 taking sclerochronology to the next level (DFG-JSPS, 2020\u20132023)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>\u201eWir haben die Erde nur von unseren Kindern geliehen.\u201c Umweltver\u00e4nderungen und Lebensweise im Zentraloman im 3. und 2. Jahrtausend v. Chr.: Teilprojekt Malakologie (BMBF, 2020\u20132024)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>The limits of ecological uniformitarianism \u2013 a sclerochronological investigation (Leverhulme Trust, 2021\u20132024)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Assessing the history of acidification in aquatic ecosystems \u2013 a novel (sclerochronological) way to determine ecological tipping points (JGU Mainz, 2024)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Freshwater pearl mussels as stream water stable isotope recorders \u2013 MUSES (DFG-FNR, 2021\u20132025)<\/li>\n<!-- \/wp:list-item -->\n\n<!-- wp:list-item -->\n<li>Developing and calibrating paleoweather proxies from Giant Clams (Chinesisch-Deutsches Zentrum f\u00fcr Wissenschaftsf\u00f6rderung, CDZ = DFG-NSFC, 2021\u20132025)<\/li>\n<!-- \/wp:list-item --><\/ul>\n<!-- \/wp:list -->\n<!-- \/wp:jgu\/tabs-item -->\n\n<!-- wp:jgu\/tabs-item {\"title\":\"Publications\",\"slug\":\"publications\"} -->\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><em><strong>In review:<\/strong><\/em><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(1) T\u00fcrk G, Gey CJ, <strong>Sch\u00f6ne BR<\/strong> and Pfister L. Effects of synoptic atmospheric variability on sub-daily precipitation \u03b4<sup>18<\/sup>O-air temperature functions in reconstructions of pre-instrumental \u03b4<sup>18<\/sup>O chronicles across Europe. Hydrology and Earth System Sciences. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(2) Bassett C, Andrus CFT, <strong>Sch\u00f6ne BR<\/strong> and West C. Variability in daily growth increment width indicates subtidal versus intertidal habitat in specimens of <em>Saxidomus gigantea<\/em>. Quaternary Research. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(3) Li LY, Bernal-Tamayo JP, Hetzinger S, Halfar J, Johnson MD, Vonhof H, Schiebel R and Sch\u00f6ne BR. Unlocking rhodoliths as paleoceanographic archives. Nature Communications Earth &amp; Environment.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(4) Zhao L, Xu Y, Shirai K, <strong>Sch\u00f6ne B<\/strong>, Jiang X, Deng Y and Liu Y. Strontium spiking \u2014 An effective strategy for boosting bivalve larval resilience under acidification. Aquaculture. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(5) Earland JL, Kender S, <strong>Sch\u00f6ne B<\/strong>, Sengupta T, Ward SL, Ascough P, Blaauw M and Scourse JD. Marine environmental change adjacent to a cultural landscape: Late glacial and Holocene marine palaeoenvironmental evolution of Scapa Flow, Orkney. The Holocene.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(6) Xu M, Lin Y, Ma X, Li Y, Rogers KM, Osinowo A, Oginni T, Wu H, Zhang Y and <strong>Sch\u00f6ne B<\/strong>. Enhancing trophic ecology precision: Compound-specific isotope analysis overcomes the limitations of bulk analysis in a complex mangrove ecosystem. Methods in Ecology and Evolution.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(7) Peharda M, de Winter N, Sch\u00f6ne BR, Uvanovi\u0107 H, van der Lubbe J, Verdegaal-Warmerdam S, Bujas N, Stani\u0107 R &amp; Janekovi\u0107 I. Shell isotope data of the variegated scallop, <em>Mimachlamys varia<\/em> provide information on marine environmental conditions and the timing and rate of seasonal growth. Regional Studies in Marine Science. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(8) Wang G, Dong J, Sch\u00f6ne B, He M, Zhang Y, Yang H, Xue G, Zhang Y, Wang J, Liu C, Zhang Q, Y Jia, J Dodson &amp; Yan H. Title: High-resolution trace element records in land snail shells as proxies for weather-scale environmental variability. Palaeogeography, Palaeoclimatology, Palaeoecology. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><em><strong>Peer-reviewed:<\/strong><\/em><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(254) Tian Y, Koncz I, Farag\u00f3 N, Knipper C, Friedrich R, Vyas D, Samu L, Spekker O, Szeniczey T, Hajdu T, Mende B, Tomka P, Pap I, Czig\u00e1ny D, Radzeviciute R, Traverso L, Gnecchi-Ruscone G, Francalacci P, <strong>Sch\u00f6ne B<\/strong>, T\u00f3th G, Sz\u00e9cs\u00e9nyi-Nagy A, le Roux P, Alt K, Hofmanov\u00e1 Z, Pohl W, Krause J, Vida T and Geary P. Unveiling the complexity of post-Roman polity formation using ancient DNA. Science, accepted. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(253) T\u00fcrk G, Gey CJ, <strong>Sch\u00f6ne BR<\/strong>, Florianic MG, Kirchner JW, Leonard L, Gourdol L, Keim R and Pfister L 2026. Bedrock geology controls on new water fractions and catchment functioning in contrasted nested catchments. Hydrology and Earth System Sciences 30, 343-369.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(252) MacRoberts RA, Evangelista LS, Louren\u00e7o M, Silva MF, Barrocas Dias C, Vasconcelos Vilar H, <strong>Sch\u00f6ne BR <\/strong>and Maurer A-F 2026. Marginalised communities in Late Medieval Lisbon: A multi-isotope diet and mobility study of the Rua dos Lagares #74 necropolis. In: A Diana, DM Istrate &amp; A Toso (Eds), Human Identities in the Archaeological Record: An Interdisciplinary Perspective from Late Antiquity to the Early Modern Period. Bloomsbury, in press.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(251) Nishida K, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Trueman C and Chung M-T 2025. Expanding the horizons of sclerochronology: new perspectives for life history and environmental monitoring. Limnology and Oceanography Letters 11, e70091.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(250) Gey CJ, T\u00fcrk G, Pfister L, Laudon H, Thielen F &amp; <strong>Sch\u00f6ne BR<\/strong> 2025. Two centuries of streamflow behavior inferred from freshwater pearl mussel shell \u03b4<sup>18<\/sup>O in northern Sweden. Water Resources Research 61, e2025WR041632. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(249) Earland JL, Kender S, <strong>Sch\u00f6ne BR<\/strong>, Sengupta T, Ward S, Bradley S, Blaauw M, Ascough P and Scourse JD 2025. Assessing Atlantic subpolar gyre influence on the northern North Sea during the Holocene: A marine palaeoenvironmental reconstruction from the Fetlar basin (Shetland, UK). Quaternary Science Reviews 372, 109711.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(248) Maurer A-F, MacRoberts R, Lopez-Aceves JM, Ortega-Gonzalez AF, Relvado C, Fernandes T, Curate F, Teixeira J, Roca-Rada X, Llamas B, Luzia I, Pires A, Oliveira LF, Tete Garcia C, Barrocas Dias C, <strong>Sch\u00f6ne BR<\/strong>, Ribeiro S, Santos JF and Valente MJ 2025. Mobility of populations in the transition from Muslim world to Portuguese Kingdom in the Algarve, south Portugal, 11<sup>th<\/sup> \u2013 13<sup>th<\/sup> centuries. Archaeological and Anthropological Sciences 17, 225.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(247) Theodoraki D, Mannino M, Prendergast A, <strong>Sch\u00f6ne BR<\/strong> and Hausmann N 2025. Multi-regional calibration of <em>Patella caerulea<\/em> as palaeothermometer using oxygen isotope values and Mg\/Ca ratios. The Holocene. doi:10.1177\/09596836251378034   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(246) Fr\u00f6hlich L, Huang Q and <strong>Sch\u00f6ne BR<\/strong> 2025. Influence of sampling strategy, alignment method and growth morphology on the temporal contextualization of high-resolution geochemical data. Palaeogeography, Palaeoclimatology, Palaeoecology 674, 113003.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(245) Guti\u00e9rrez-Zugasti I, Su\u00e1rez-Revilla R, Garc\u00eda-Esc\u00e1rzaga A, Clarke LJ, <strong>Sch\u00f6ne BR<\/strong>, Pascual-Revilla J, Garc\u00eda-G\u00f3mez JC, Zilh\u00e3o J, Zapata J and Mar\u00edn A 2025. Shell sclerochronology of the limpet <em>Patella ferruginea<\/em> Gmelin, 1791: implications for growth patterns and reconstruction of past sea surface temperatures. Palaeogeography, Palaeoclimatology, Palaeoecology 670, 112954. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(244) Schmitt K and Proctor L, Beuzen-Waller T, Schmidt C, Lindauer S, Jean M, Sauvage M, Swerida J and <strong>Sch\u00f6ne BR <\/strong>2025. Unlocking the potential of the terrestrial gastropod species <em>Zootecus insularis<\/em> as a climate archive for arid regions. Scientific Reports 15, 13754.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(243) Schmidt C, Beuzen-Waller T, Pietsch D, Proctor L, Schmitt KE, <strong>Sch\u00f6ne BR<\/strong>, Unkelbach J, Reinhardt A and Lindauer S 2025. A multi-proxy investigation of the anthropogenic landscape near the Early Bronze Age Building VII at Al-Khashbah, Oman. Open Quaternary 11, 154.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(242) Reynolds D, Genelt-Yanovskiy E, Genelt-Yanovskaya A, Northey E, Butler P, Trofimova T, Conti M, Penkman K, Huang Q, <strong>Sch\u00f6ne B<\/strong> and Scourse J 2025. A 600-year baseline of ecological and climate dynamics in the North Sea. Philosophical Transactions of the Royal Society B, accepted.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(241) Brosset C, Liu C, Yang H, Yan H and <strong>Sch\u00f6ne BR<\/strong> 2025. Integrating high-resolution Sr\/Ca and ultrastructural analyses of the <em>Tridacna squamosa<\/em> shell to reconstruct sub-daily seawater temperature variation. Palaeogeography, Palaeoclimatology, Palaeoecology 659, 112663. Data: <a>doi:10.5281\/zenodo.12206690<\/a> <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(240) Agbaje OBA, Huang Q, Op De Beeck M, Ambus PL, Thygesen LG, <strong>Sch\u00f6ne BR<\/strong> and Sand KK 2025. Molecular signatures of biomacromolecules at micron and submicron scales in <em>Arctica islandica<\/em> shells. Chemical Geology 673, 122550. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(239) <strong>Sch\u00f6ne BR<\/strong>, Young H, Vonhof H and Harland J 2025. Shells of <em>Littorina littorea<\/em> (Gastropoda) \u2013 An archive for paleoclimate and seasonal shellfish collection in medieval and early modern Orkney? Philosophical Transactions of the Royal Society B, accepted (doi:10.1098\/rstb.2024-0039).  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(238) Johnson ALA, <strong>Sch\u00f6ne BR<\/strong>, Petersen SV, de Winter NJ, Dowsett HJ, Cudennec J-F, Harper EM and Winkelstern IZ 2025. Molluscan sclerochronology in marine palaeoclimatology: taxa, technique and timespan issues. Quaternary Science Reviews 350, 109068.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(237) Cudennec J-F, <strong>Sch\u00f6ne BR<\/strong>, Leng M, Harper EM, Gofas S, Wesselingh F and Johnson ALA 2024. Stable oxygen isotopes reveal different thermal regimes during the Early Pliocene in the southern North Sea Basin: a multi-species approach. Journal of Molluscan Studies 90, eyae051.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(236) Schmitt KE, Beuzen-Waller T, Schmidt C, Proctor L, Lindauer S, Gey CJ, Pietsch D and <strong>Sch\u00f6ne BR<\/strong> 2024. <em>Melanoides tuberculata<\/em> and <em>Zootecus insularis<\/em> gastropod shells provide a snapshot into past hydroclimatic conditions of arid environments: New perspectives from Oman. Palaeogeography, Palaeoclimatology, Palaeoecology 655, 112542.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(235) Miki S, Kubota K, Nakashima R, Tanabe K, Brosset C, <strong>Sch\u00f6ne BR<\/strong>, Yamaguchi A and Shirai K 2024. High temporal resolution paleoclimate reconstruction by the analysis of growth patterns and stable isotopes of fossil shells of the long-lived bivalve <em>Mercenaria stimpsoni<\/em> from MIS 5e, 7 and 9. Palaeogeography, Palaeoclimatology, Palaeoecology 656, 112537. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(234) Liu C, Yan H, Zhao L, Zhao N, Luo F, Wen H, Yang H, Yang W, Hao J, Liang C, Tanaka K, Murakami-Sugihara N, Shirai K, Takahata N, Dodson J and <strong>Sch\u00f6ne BR<\/strong> 2024. Potential environment effect on ultrahigh resolution Sr\/Ca of giant clam shells from South China Sea. Coral Reefs 43, 1511-1521.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(233) Gey C, Pfister L, T\u00fcrk G, Thielen F, Leonard L, Schmitt K, <strong>Sch\u00f6ne BR<\/strong> 2024. Biologically driven isotope fractionation in ultrastructurally different shell portions of freshwater pearl mussels (<em>Margaritifera margaritifera<\/em>): Implications for stream water \u03b4<sup>18<\/sup>O reconstructions. Limnology and Oceanography Letters 9, 827\u2013836.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(232) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Markulin K, Uvanovi\u0107, Tanaka K, Shirai K, Goodwin D and Mihanoni\u0107 H 2024. <em>Mytilus galloprovincialis<\/em> shell growth \u2013 insights from shell geochemistry. Palaeogeography, Palaeoclimatology, Palaeoecology 650, 112367.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(231) Johnson ALA, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Bhattacharya T, Moss DK, Ivany LC and Duff RP 2024. Sclerochronological evidence of life history and ambient temperature from modern and early Pleistocene <em>Glycymeris americana<\/em> (Mollusca: Bivalvia) of the U.S. eastern seaboard. Palaios 39, 175\u2013193.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(230) Schmitt KE, Fink LJ, Jantschke A, Vigelius D and <strong>Sch\u00f6ne BR<\/strong> 2024. Isotopic and mineralogic bias introduced by pulverization of aragonite. Rapid Communications in Mass Spectrometry 38, e9842.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(229) Siebert S, Fr\u00f6hlich L, Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Delebecq G, Picheral M, Waeles M and Boriceau B 2024. Dynamics of barium and molybdenum in the Bay of Brest (France) explained by phytoplankton community structure and aggregation events. Estuarine, Coastal and Shelf Science 303, 108783.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(228) MacRoberts RA, Liberato M, Roca-Rada X, Valente M-J, Relvado C, Matos Fernandes T, Barrocas Dias C, Llamas B, Vasconcelos Vilar H, <strong>Sch\u00f6ne BR<\/strong>, Sara, R, Francisco Santos J, Teixeira, J and Maurer A-F 2024. Shrouded in History: Unveiling the ways of life of an early Muslim population in Santar\u00e9m, Portugal (8<sup>th<\/sup> \u2013 10<sup>th<\/sup> century AD). PLOS ONE 19, e0299958. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(227) Zemunik Selak P, Denamiel C, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J, Uvanovi\u0107 H, Markulin K, Vilibic I 2024. Projecting expected growth period of bivalves in a coastal temperate sea. Limnology and Oceanography Letters 9, 815\u2013826.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(226) H\u00f6che N, Zettler ML, Huang X and <strong>Sch\u00f6ne BR<\/strong> 2024. Shell microstructures (disturbance lines) of <em>Arctica islandica<\/em> (Bivalvia) \u2013 A potential proxy for severe oxygen depletion. Frontiers in Marine Science 10, 1219716. Data: doi:10.5281\/zenodo.7404135 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(225) Leclerc N, Kuehn S, Clark T, Burchell M, Coupland G and <strong>Sch\u00f6ne BR<\/strong> 2024. Investigation of seasonal settlement and clam harvest pressure in the Sechelt Inlet system, British Columbia, Canada, through sclerochronology and stable oxygen isotope analyses. Environmental Archaeology 29, 451\u2013462.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(224) Brosset C, H\u00f6che N, Witbaard R, Nishida K, Shirai K, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2023. Sr\/Ca in shells of laboratory-grown bivalves (<em>Arctica islandica<\/em>) serves as a proxy for water temperature \u2013 Perspectives for (paleo)environmental research? Frontiers in Marine Science 10, 1279164. Data: doi:10.5281\/ZENODO.8249992 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(223) Huang Q, Agbaje OBA, Conti M and <strong>Sch\u00f6ne BR<\/strong> 2023. Organic phases in bivalve (<em>Arctica islandica<\/em>) shells: Their bulk and amino acid nitrogen stable isotope compositions. Geochemistry, Geophysics, Geosystems 24, e2023GC0111147. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(222) Mette MJ, Andersson C, <strong>Sch\u00f6ne BR<\/strong>, Bonitz FGW, Melvik V, Trofimova T and Miles MW 2023. Two centuries of southwest Iceland annually-resolved marine temperature reconstructed from <em>Arctica islandica<\/em> shells. Estuarine, Coastal and Shelf Science 294, 108525. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(221) Fr\u00f6hlich L, Siebert V, Huang Q, Th\u00e9bault J, Moriceau B, Jochum KP and <strong>Sch\u00f6ne BR<\/strong> 2023. Uptake of barium, molybdenum and lithium and incorporation into the shell of <em>Pecten maximus<\/em>: refining proxies for primary production dynamics. Limnology and Oceanography 68, 2544\u20132561.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(220) Gey CJ, Thielen F, Pfister L, Hissler C, T\u00fcrk G, Baier S and <strong>Sch\u00f6ne BR<\/strong> 2023. Disturbed by pH? \u2013 Nacre tablet thickness of freshwater pearl mussels (<em>Margaritifera margaritifera<\/em>) is a poor temperature proxy. Marine and Freshwater Research 74, 1129\u20131144.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(219) de Winter NJ, Killam D, Fr\u00f6hlich L, de Nooijer L, Boer W, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J and Reichart G-J 2023. Ultradian rhythms in shell composition of photosymbiotic and non-photosymbiotic mollusks. Biogeosciences 20, 3027\u20133052.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(218) Siebert V, Moriceau B, Fr\u00f6hlich L, <strong>Sch\u00f6ne BR<\/strong>, Amice E, Beker B, Bihannic K, Bihannic I, Delebeq G, Devesa J, Gallinari M, Germain Y, Grossteffan \u00c9, Jochum KP, Le Bec T, Ge Geoff M, Liorzou C, Leynaert A, Marec C, Picheral M, Rimmelin-Maury P, Rouget M-L, Waeles M and Th\u00e9bault J 2023. HIPPO environmental monitoring: impact of phytoplankton dynamics on water column chemistry and the sclerochronology of the king scallop (<em>Pecten maximus<\/em>) as a biogenic archive for past primary production reconstructions. Earth System Science Data 15, 3263\u20133281.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(217) Huang X, Zhao L, Zettler M, Mertz-Kraus R, Jochum, KP and <strong>Sch\u00f6ne BR<\/strong> 2023. High-resolution history of oxygen depletion in the SW Baltic Sea since the mid-19<sup>th<\/sup> century as revealed by bivalve shells. Science of the Total Environment 888, 164011. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(216) Huang Q, Wu H and <strong>Sch\u00f6ne BR<\/strong> 2023. A novel trophic archive: Practical considerations of compound-specific amino acid \u03b4<sup>15<\/sup>N analysis of carbonate-bound organic matter in bivalve shells (<em>Arctica islandica<\/em>). Chemical Geology 615, 121220. Data: doi:10.5281\/zenodo.7524385 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(215) <strong>Sch\u00f6ne BR<\/strong>, Marali S, Jantschke A, Mertz-Kraus R, Butler PG and Fr\u00f6hlich L 2023. Can element chemical impurities in aragonitic shells of marine bivalves serve as proxies for environmental variability? Chemical Geology 616, 121215.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(214) Ezgeta-Bali\u0107 D, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Uvanovi\u0107 H, Vrgo\u010d N, Markulin M, Radoni\u0107 I, Denamiel CL and Kova\u010d \u017d 2022. Different life strategies of the three commercially exploited scallop species living under the same environmental conditions. Frontiers in Marine Science 9, 992042.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(213) Schmitt KE, Walliser OH, <strong>Sch\u00f6ne BR<\/strong>, Gey CJ and Schmidt C 2022. Environmental reconstructions based on aquatic and terrestrial snails originating from the Early Bronze Age and the Late Islamic Period \u2013 A stable isotope case study from the Al-Khashbah archaeological Site, Sultanate of Oman. Journal of Archaeological Science Reports 45, 103620.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(212) Fr\u00f6hlich L, Siebert V, Huang Q, Th\u00e9bault J, Jochum KP, <strong>Sch\u00f6ne BR<\/strong> 2022. Deciphering the potential of Ba\/Ca, Mo\/Ca and Li\/Ca profiles in the bivalve shell <em>Pecten maximus<\/em> as proxies for the reconstruction of phytoplankton dynamics. Ecological Indicators 141, 109121. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(211) Torbenson M, Klippel L, Hartl C, Reinig F, Treydte K, B\u00fcntgen U, Trnka M, <strong>Sch\u00f6ne B<\/strong>, Schneider L and Esper J 2022. Investigation of age trends in tree-ring stable carbon and oxygen isotopes from northern Fennoscandia over the past millennium. Quaternary International 631, 105\u2013114.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(210) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ and Goolaerts S 2022. Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea Basin, and its implications. Climate of the Past 18, 1203\u20131229. Data: doi:10.5281\/zenodo.5585630<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(209) Brosset C, H\u00f6che N, Shirai K, Nishida K, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2022. Strong coupling between biomineral morphology and Sr\/Ca of <em>Arctica islandica<\/em> (Bivalvia) \u2014 Implications for shell Sr\/Ca-based temperature estimates. Minerals 12, 500.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(208) <strong>Sch\u00f6ne BR<\/strong>, Marali S, Mertz-Kraus R, Butler PG, Wanamaker Jr AD and Fr\u00f6hlich L 2022. Importance of weighting high-resolution proxy data from bivalve shells to avoid bias caused by sample spot geometry and variability in seasonal growth rate. Frontiers in Earth Science 10, 889115.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(207) <strong>Sch\u00f6ne BR<\/strong>, Huang X, Jantschke A, Mertz-Kraus R and Zettler ML 2022. High-resolution reconstruction of dissolved oxygen levels in the Baltic Sea with bivalves \u2013 a multi-species comparison (<em>Arctica islandica<\/em>, <em>Astarte borealis<\/em>, <em>Astarte elliptica<\/em>). Frontiers in Marine Science 8, 820731. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(206) Fr\u00f6hlich L, Siebert V, Walliser EO, Th\u00e9bault J, Jochum KP, Chauvaud L and <strong>Sch\u00f6ne BR<\/strong> 2022. Ba\/Ca profiles in shells of <em>Pecten maximus<\/em> \u2013 A proxy for specific primary producers rather than bulk phytoplankton. Chemical Geology 593, 120743. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(205) Milano S, <strong>Sch\u00f6ne BR<\/strong>, Gonz\u00e1lez-Morales MR and Guti\u00e9rrez-Zugasti I 2022. Temporal and spatial variability of prehistoric aquatic resource procurement: a case study from Mesolithic Northern Iberia. Scientific Reports 12, 3111.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(204) H\u00f6che N, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2022. Microstructural mapping of <em>Arctica islandica<\/em> shells reveals environmental and physiological controls on biomineral size. Frontiers in Earth Science 9, 781305. Data: doi:10.5281\/zenodo.5215465 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(203) Peharda M, Gillikin DP, <strong>Sch\u00f6ne BR<\/strong>, Verheyden A, Uvanovi\u0107 H, Markulin K, \u0160ari\u0107 T, Janekovi\u0107 I and \u017dupan I 2022. Nitrogen isotope sclerochronology \u2013 Insights into coastal environmental conditions and <em>Pinna nobilis<\/em> ecology. Frontiers in Marine Science 8, 816879. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(202) Th\u00e9bault J, Jolivet A, Waeles M, Tabouret H, Saboret S, P\u00e9cheyran P, Leynaert A, Jochum KP, <strong>Sch\u00f6ne BR<\/strong>, Fr\u00f6hlich L, Siebert V, Amice E and Chauvaud L 2022. Scallop shells as geochemical archives of phytoplankton-related ecological processes in a temperate coastal ecosystem. Limnology and Oceanography 67, 187\u2013202.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(201) <strong>Sch\u00f6ne BR<\/strong> and Huang Q 2021. Ontogenetic \u03b4<sup>15<\/sup>N trends and multidecadal variability in shells of the bivalve mollusk, <em>Arctica islandica<\/em>. Frontiers in Marine Science 8, 748593. doi:10.3389\/fmars.2021.748593 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(200) de Winter NJ, D\u00e4mmer LK, Falkenroth M, Reichert G-J, Moretti S, Martinez-Garc\u00eda A, H\u00f6che N, <strong>Sch\u00f6ne BR<\/strong>, Rodiouchkina K, Goderis S, Vanhaecke F, van Leeuwen SM and Ziegler M 2021. Multi-isotopic and trace element evidence against different formation pathways for oyster microstructures. Geochimica et Cosmochimica Acta 308, 326\u2013352. Data: doi:10.5281\/zenodo.4733727<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(199) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Corr\u00e8ge T 2021. Advances of sclerochronology research in the last decade. Palaeogeography, Palaeoclimatology, Palaeoecology 570, 110371.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(198) Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Corr\u00e8ge T 2021. Reading the diaries of life - current advances in sclerochronological research. Palaeogeography, Palaeoclimatology, Palaeoecology 570, 110373.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(197) Weber M, Hinz Y, <strong>Sch\u00f6ne BR<\/strong>, Jochum KP, Hoffmann D, Sp\u00f6tl C, Riechelmann DFC and Scholz D 2021. Opposite trends in Holocene speleothem proxy records from two neighboring caves in Germany: A multi-proxy evaluation. Frontiers in Earth Science 9, 642651.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(196) H\u00f6che N, Walliser EO, de Winter NJ, Witbaard R and <strong>Sch\u00f6ne BR<\/strong> 2021. Temperature-induced microstructural changes in shells of laboratory-grown <em>Arctica islandica<\/em> (Bivalvia). PLOS ONE 16, e0247968. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(195) Alexandroff SJ, Butler PG, Hollyman PR, <strong>Sch\u00f6ne BR<\/strong> and Scourse JD 2021. Late Holocene seasonal temperature variability of the western Scottish shelf (St Kilda) recorded in fossil shells of the bivalve <em>Glycymeris glycymeris<\/em>. Palaeogeography, Palaeoclimatology, Palaeoecology 562, 110146. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(194) <strong>Sch\u00f6ne BR<\/strong>, Huang X, Zettler ML, Zhao L, Mertz-Kraus R, Jochum KP and Walliser EO 2021. Mn\/Ca in shells of <em>Arctica islandica<\/em> (Baltic Sea) \u2013 A potential proxy for ocean hypoxia? Estuarine, Coastal and Shelf Science 251, 107257. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(193) Trofimova T, Andersson C, Bonitz FGW, Rydland Pedersen L-E and <strong>Sch\u00f6ne BR <\/strong>2021. Reconstructing early Holocene seasonal bottom-water temperatures in the northern North Sea using stable oxygen isotope records of <em>Arctica islandica<\/em> shells. Palaeogeography, Palaeoclimatology, Palaeoecology 567, 110242. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(192) Siebert V, Poitevin P, Chauvaud L, <strong>Sch\u00f6ne BR<\/strong>, Lazure P and Th\u00e9bault J 2021. Using growth and geochemical composition of <em>Clathromorphum compactum<\/em> to track multiscale North Atlantic hydro-climate variability. Palaeogeography, Palaeoclimatology, Palaeoecology 562, 110097. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(191) Uvanovi\u0107 H, <strong>Sch\u00f6ne BR<\/strong>, Markulin K, Janekovi\u0107 I and Peharda M 2021. Venerid bivalve <em>Venus verrucosa<\/em> as a high-resolution archive of seawater temperature in the Mediterranean Sea. Palaeogeography, Palaeoclimatology, Palaeoecology 561, 110057. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(190) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Sloane HJ and Janekovi\u0107 I 2021. Growth-increment characteristics and isotopic (\u03b4<sup>18<\/sup>O) temperature record of sub-thermocline <em>Aequipecten opercularis<\/em> (Mollusca:Bivalvia): evidence from modern Adriatic forms and an application to early Pliocene examples from eastern England. Palaeogeography, Palaeoclimatology, Palaeoecology 561, 110046. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(189) Peharda M, <strong>Sch\u00f6ne BR<\/strong> and Limburg KE 2020. Sclerochronological research: Opportunities and challenges. Estuarine, Coastal and Shelf Science 245, 107012.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(188) Trofimova T, Alexandroff S, Mette M, Tray E, Butler P, Campana S, Harper E, Johnson A, Morrongiello J, Peharda M, <strong>Sch\u00f6ne BR<\/strong>, Andersson C, Andrus F, Black B, Burchell M, Carroll M, DeLong K, Gillanders B, Gr\u00f8nkj\u00e6r P, Killam D, Prendergast A, Reynolds D, Scourse J, Shirai K, Th\u00e9bault J, Trueman C and de Winter N 2020. Fundamental questions and applications of sclerochronology: Community-defined research priorities. Estuarine, Coastal and Shelf Science 245, 106977.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(187) Walliser EO, Vodr\u00e1\u017eka R, H\u00f6che N, Voigt S and <strong>Sch\u00f6ne BR<\/strong> 2020. Late Turonian climate variability in the Bohemian Cretaceous Basin \u2013 A sclerochronological study of <em>Inoceramus hercules<\/em> shells from the \u00dapohlavy quarry (Czech Republic). Palaeogeography, Palaeoclimatology, Palaeoecology 560, 109996. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(186) Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2020. Paleoceanography of the Late Cretaceous northwestern Tethys Ocean: seasonal upwelling or steady thermocline? PLoS ONE 15, e0238040.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(185) Markulin K, Uvanovi\u0107 H, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, Kova\u010d Z, Arapov J and Peharda M 2020. Spatial variations in Ba\/Ca<sub>shell<\/sub> fingerprints of <em>Glycymeris pilosa<\/em> along the eastern Adriatic Sea. Estuarine, Coastal and Shelf Science 243, 106821. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(184) Saulsbury J, Moss DK, Ivany LC, Kowalewski M, Lindberg DR, Gillooly JF, Heim NA, McClain CR, Payne J, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong>, Goodwin D and Finnegan S 2020. Idiographic and nomothetic approaches to heterogeneity are complementary: Response to comments on \u201cEvaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates\u201d. Paleobiology 46, 275\u2013277.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(183) Riechelmann, DFC, Riechelmann S, Wassenburg JA, Fohlmeister J, <strong>Sch\u00f6ne BR<\/strong>, Jochum KP, Richter DK and Scholz D 2020. High\u2010resolution proxy records from two simultaneously grown stalagmites from Zoolithencave (southeastern Germany) and their potential for palaeoclimate reconstruction. Geochemistry, Geophysics, Geosystems 21, e2019GC008755.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(182) Walliser EO, Fr\u00f6hlich L and <strong>Sch\u00f6ne BR <\/strong>2020. Inoceramid single prism sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 547, 109690.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(181) H\u00f6che N, Peharda M, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2020. Morphological variations of crossed-lamellar ultrastructures of <em>Glycymeris bimaculata<\/em> (Bivalvia) serve as a marine temperature proxy. Estuarine, Coastal and Shelf Science 237, 106658. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(180) Zhao L, Shirai K, Tanaka K, Milano S, Higuchi T, Murakami-Sugihara N, Walliser EO, Yang F, Deng Y and <strong>Sch\u00f6ne BR<\/strong> 2020. A review of transgenerational effects of ocean acidification on marine bivalves and their implications for sclerochronology. Estuarine, Coastal and Shelf Science 235, 106620.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(179) <strong>Sch\u00f6ne BR<\/strong>, Meret AE, Baier SM, Fiebig J, Esper J, McDonnell J and Pfister L 2020. Freshwater pearl mussels from northern Sweden serve as long-term, high-resolution stream water isotope recorders. Hydrology and Earth System Sciences 24, 673\u2013696.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(178) MacRoberts RA, Barrocas Dias CM, Fernandes T, Santos AL, Umbelino C, Gon\u00e7alves A, Santos JF, Ribeiro S, <strong>Sch\u00f6ne BR<\/strong>, Barros F, Correia F, Vasconcelos Vilar H and Maurer A-F 2020. Diet and mobility during the Christian conquest of Iberia: The multi-isotopic investigation of a 12<sup>th<\/sup>-13<sup>th<\/sup> century military order in \u00c9vora, Portugal. Journal of Archaeological Science Reports 30, 102210. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(177) Nicastro A, Surge D, Briz i Godino I, \u00c1lvarez M, <strong>Sch\u00f6ne BR<\/strong> and Bas M 2020. High-resolution records of growth temperature and life history of two <em>Nacella<\/em> limpet species, Tierra del Fuego, Argentina. Palaeogeography, Palaeoclimatology, Palaeoecology 540, 109526. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(176) Zhao L, Milano S, Tanaka K, Liang J, Deng Y, Yang F, Walliser E and <strong>Sch\u00f6ne BR<\/strong> 2020. Trace elemental alterations of bivalve shells following transgenerational exposure to ocean acidification: Implications for geographical traceability and environmental reconstruction. Science of the Total Environment 705, 135501.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(175) Featherstone AM, Butler PG, <strong>Sch\u00f6ne BR<\/strong>, Peharda M and Th\u00e9bault J 2020. A 45-year sub-annual reconstruction of seawater temperature in the Bay of Brest, France, using the shell oxygen isotope composition of the bivalve <em>Glycymeris glycymeris<\/em>. The Holocene 30, 3\u201312.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(174) Saulsbury J, Moss DK, Ivany LC, Kowalewski M, Lindberg DR, Gillooly JF, Heim NA, McClain CR, Payne J, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong>, Goodwin D and Finnegan S 2019. Evaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates. Paleobiology 45, 405\u2013420.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(173) Aguirre M, Voelker A, <strong>Sch\u00f6ne BR<\/strong>, Dettman D, Panarello H, G\u00f3mez Peral L, Castro L, Donato M, Medina R, Richiano S 2019. Late Quaternary nearshore molluscan patterns from Patagonia: windows to southern southwestern Atlantic-Southern Ocean palaeoclimate and biodiversity changes? Global and Planetary Change 181, 102990.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(172) Peharda M, Walliser EO, Markulin K, Purroy A, Uvanovi\u0107 H, Janekovic I, \u017dupan I, Vilibic I and <strong>Sch\u00f6ne BR<\/strong> 2019. <em>Glycymeris pilosa <\/em>(Bivalvia) \u2013 A high-potential geochemical archive of the environmental variability in the Adriatic Sea. Marine Environmental Research 150, 104759.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(171) Milano S, <strong>Sch\u00f6ne BR<\/strong> and Guti\u00e9rrez-Zugasti I 2019. Oxygen and carbon stable isotopes of <em>Mytilus gallopronvincialis<\/em> Lamarck, 1819 shells as environmental and provenance proxies. The Holocene, 30, 65\u201376.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(170) Flessa KW, Calderon-Aguilera L , Cintra-Buenrostro CE, Dettman DL, Dietl GP, Goodwin DH, Jacobs DK, Kowalewski M, Nelson SM, Rowell K, <strong>Sch\u00f6ne BR<\/strong>, Smith JA and Zamora-Arroyo F 2019. Vaquita face extinction from bycatch. Comment on Manjarrez-Bringas, N. et al., Lessons for sustainable development: Marine mammal conservation policies and its social and economic effects. Sustainability 11, 2169 (doi:10.3390\/su11072161).<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(169) Flessa K, Calderon L, Cintra-Buenrostro C, Dettman D, Dietl G, Goodwin D, Kowalewski M, Nelson, Rowell K, <strong>Sch\u00f6ne B<\/strong>, Smith J, Zamora-Arroyo F 2019. Comment on Rojas-Bracho et al., 2018: Unsubstantiated claims can lead to tragic conservation outcomes. BioScience 69, 321\u2013322.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(168) Estrella-Mart\u00ednez J, Ascough PL, <strong>Sch\u00f6ne BR<\/strong>, Scourse JD and Butler PG 2019. 8.2 ka event North Sea hydrography determined by bivalve shell stable isotope geochemistry. Nature Scientific Reports 9, 6753.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(167) Estrella-Mart\u00ednez J, <strong>Sch\u00f6ne BR<\/strong>, Thurstan RH, Capuzo E, Scourse JD and Butler P 2019. Reconstruction of Atlantic herring (<em>Clupea harengus<\/em>) recruitment in the North Sea for the past 455 years based on the \u03b4<sup>13<\/sup>C from annual shell increments of the ocean quahog (<em>Arctica islandica<\/em>). Fish and Fisheries 2019, 1\u201315 (doi: 10.1111\/faf.12362).  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(166) Black BA, Andersson C, Butler PG, Carroll M, DeLong KL, Reynolds DJ, <strong>Sch\u00f6ne BR<\/strong>, Scourse J, van der Sleen P, Wanamaker AD and Witbaard R 2019. The revolution in marine paleoecology and paleoclimatology. Biology Letters 15, 20180665.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(165) Markulin K, Peharda M, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, Uvanovi\u0107 H, Kova\u010d \u017d and Janekovi\u0107 I 2019. Trace and minor element records in aragonitic bivalve shells as environmental proxies. Chemical Geology 507, 120\u2013133.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(164) Hansen M, Scholz D, <strong>Sch\u00f6ne BR<\/strong> and Sp\u00f6tl C 2019. Simulating speleothem growth in the laboratory: Determination of the stable isotope fractionation (\u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C) between H<sub>2<\/sub>O, DIC and CaCO<sub>3<\/sub>. Chemical Geology 509, 20\u201344.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(163) Walliser EO, Tanabe K, Hikida Y, Shirai K and <strong>Sch\u00f6ne BR <\/strong>2019. Sclerochronological study of the gigantic inoceramids <em>Sphenoceramus schmidti<\/em> and <em>S. sachalinensis<\/em> from Hokkaido, northern Japan. Lethaia 52, 410\u2013428.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(162) Lindauer S, Friedrich R, van Gyseghem R, <strong>Sch\u00f6ne BR<\/strong> and Hinderer M 2019. Highly-resolved radiocarbon measurements on shells from Kalba, UAE, using carbonate handling system and gas ion source with MICADAS. Nuclear Instruments and Methods in Physics Research B455, 146\u2013153.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(161) Johnson ALA, Valentine AM, Leng MJ, <strong>Sch\u00f6ne BR<\/strong> and Sloane HJ 2019. Life history, environment and extinction of the scallop <em>Carolinapecten eboreus<\/em> (Conrad) in the Plio-Pleistocene of the U.S. eastern seaboard. Palaios 34, 49\u201370.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(160) Tanaka K, Okaniwa N, Miyaji T, Murakami-Sugihara N, Zhao L, Tanabe K, <strong>Sch\u00f6ne BR<\/strong> and Shirai K 2019. Microscale magnesium distribution in shell of the Mediterranean mussel <em>Mytilus galloprovincialis<\/em>: An example of multiple factors controlling Mg\/Ca in biogenic calcite. Chemical Geology 511, 521\u2013532.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(159) Vignols RM, Valentine AM, Finlayson AG, Harper EM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ, Sloane H and Johnson ALA 2018. Marine climate and hydrography during deposition of the Coralline Crag (early Pliocene, UK): isotopic evidence from 16 benthic invertebrate taxa. Chemical Geology 526, 62\u201383.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(158) Garc\u00eda-Esc\u00e1rzaga A, Guti\u00e9rrez-Zugasti I, <strong>Sch\u00f6ne BR<\/strong>, Cobo A, Mart\u00edn-Chivelet J and Gonz\u00e1lez-Morales MR 2018. Growth patterns of the topshell <em>Phorcus lineatus<\/em> (da Costa, 1778) in northern Iberia deduced from shell sclerochronology. Chemical Geology 526, 49\u201361.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(157) Peharda Uljevic M, Thebault J, Markulin K, <strong>Sch\u00f6ne BR<\/strong>, Janekovi\u0107 I and Chauvaud L 2018. Contrasting shell growth strategies in two Mediterranean bivalves revealed by oxygen-isotope ratio geochemistry: the case of <em>Pecten jacobaeus<\/em> and <em>Glycymeris pilosa<\/em>. Chemical Geology 526, 23\u201335.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(156) Burchell M, Stopp MP, Cannon A, Hallmann N and <strong>Sch\u00f6ne BR<\/strong> 2018. Determining seasonality of mussel collection from an early historic Inuit site, Labrador, Canada: Comparing thin-sections with high-resolution stable oxygen isotope analysis. Journal of Archaeological Science: Reports 21, 1215\u20131224.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(155) Ballesta-Artero I, Zhao L, Milano S, Mertz-Kraus R, <strong>Sch\u00f6ne BR<\/strong>, van der Meer J and Witbaard R 2018. Environmental and biological factors influencing trace elemental and microstructural properties of <em>Arctica islandica <\/em>shells. Science of the Total Environment 645, 913\u2013923.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(154) Rubo S, Aguirre ML, Richiano SM, Medina RA and <strong>Sch\u00f6ne BR<\/strong> 2018. <em>Leukoma (Protothaca) antiqua<\/em> (Bivalvia) - A high-resolution marine paleoclimate archive for southern South America? Palaeogeography, Palaeoclimatology, Palaeoecology 505, 398\u2013409. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(153) Poitevin P, Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Jolivet A, Lazure P and Chauvaud L 2018. Ligament, hinge, and shell cross-sections of the Atlantic surfclam (<em>Spisula solidissima<\/em>): Promising marine archives NE North America. PLOS ONE 13, e0199212. Data: doi:10.5281\/zenodo.1242821 <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(152) Milano S, Lindauer S, Prendergast A, Hill E, Hunt CO, Barker G and <strong>Sch\u00f6ne BR<\/strong> 2018. Mollusk carbonate thermal behaviour and its implications in understanding prehistoric fire events in shell middens. Journal of Archaeological Science Reports 20, 443\u2013457.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(151) Zhao L, Milano S, Walliser E and <strong>Sch\u00f6ne BR<\/strong> 2018. Bivalve shell formation in a naturally CO<sub>2<\/sub>-enriched habitat: Unraveling the resilience mechanisms from elemental signatures. Chemosphere 203, 132\u2013138.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(150) Esper J, Holzk\u00e4mper S, B\u00fcntgen U, <strong>Sch\u00f6ne B<\/strong>, Keppler F, Hartl C, St. George S, Riechelmann DFC and Treydte K 2018. Site-specific climatic signals in stable isotope records from Swedish pine forests. Trees 32, 855\u2013869.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(149) Walliser EO, Mertz R and <strong>Sch\u00f6ne BR<\/strong> 2018. The giant inoceramid <em>Platyceramus platinus<\/em> as a high-resolution paleoclimate archive for the Late Cretaceous of the Western Interior Seaway. Cretaceous Research 86, 73\u201390.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(148) Zhao L, Yang F, Milano S, Han T, Walliser EO and <strong>Sch\u00f6ne BR<\/strong> 2018. Transgenerational acclimation to seawater acidification in the Manila clam <em>Ruditapes philippinarum<\/em>: Preferential uptake of metabolic carbon. Science of the Total Environment 627, 95\u2013103.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(147) Purroy A, Milano S, <strong>Sch\u00f6ne BR<\/strong>, Th\u00e9bault J and Peharda M 2018. Drivers of shell growth of the bivalve, <em>Callista chione<\/em> (L. 1758) \u2013 Combined environmental and biological factors. Marine Environmental Research 134, 138\u2013149.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(146) Trofimova T, Milano S, Andersson C, Bonitz FGW and <strong>Sch\u00f6ne BR<\/strong> 2018. Oxygen isotope composition of <em>Arctica islandica<\/em> aragonite in the context of shell architectural organization \u2013 implication for paleoclimate reconstructions. Geochemistry, Geophysics, and Geosystems 19, 453\u2013470. doi: 10.1002\/2017GC007239. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(145) Prendergast AL, Versteegh EAA and <strong>Sch\u00f6ne BR<\/strong> 2017. New research on the development of high-resolution palaeoenvironmental proxies from geochemical properties of biogenic carbonates. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 1\u20136.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(144) Tanabe K, Miyaji T, Sugihara N, Mimura T, Shirai K, <strong>Sch\u00f6ne BR<\/strong> and Kubota K 2017. Interannual to decadal variability of summer sea surface temperature in the Sea of Okhotsk recorded in the shell growth history of Stimpson\u2019s hard clams (<em>Mercenaria stimpsoni<\/em>). Global and Planetary Change 157, 35\u201347.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(143) von Leesen G, Beierlein L, Scarponi D, <strong>Sch\u00f6ne BR<\/strong> and Brey T 2017. A low seasonality scenario in the Mediterranean Sea during the Calabrian (Early Pleistocene) inferred from fossil <em>Arctica islandica<\/em> shells. Palaeogeography, Palaeoclimatology, Palaeoecology 485, 706\u2013714.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(142) Piermattei A, Urbinati C, Tonelli E, Eggertsson O, Levani\u010d T, Kaczka R, Andrew C, <strong>Sch\u00f6ne BR<\/strong> and B\u00fcntgen U 2017. Potential and limitation of combining terrestrial and marine growth records from Iceland. Global and Planetary Change 155, 213\u2013224.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(141) Hansen M, Scholz D, Froeschmann M-L, <strong>Sch\u00f6ne BR<\/strong> and Sp\u00f6tl C 2017. Carbon isotope exchange between gaseous CO<sub>2<\/sub> and thin solution films: Artificial cave experiments and a complete diffusion-reaction model. Geochimica et Cosmochmica Acta 211, 28\u201347.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(140) Walliser EO, Lohmann G, Niezgodzki I and <strong>Sch\u00f6ne BR<\/strong> 2017. Inter-annual climate variability in Europe during the Oligocene Icehouse. Palaeogeography, Palaeoclimatology, Palaeoecology 475, 140\u2013153.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(139) Marchais V, Jolivet A, Herv\u00e9 S, Roussel S, <strong>Sch\u00f6ne BR<\/strong>, Grall J, Chauvaud L and Clavier J 2017. New tool to elucidate the diet of the ormer <em>Haliotis tuberculata<\/em> (L.): Digital shell color analysis. Marine Biology 164, 71, doi:10.1007\/s00227-017-3103-3.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (138) Gutierrez I, Su\u00e1rez-Revilla R, Clarke L and <strong>Sch\u00f6ne BR<\/strong>, Bailey G and Gonz\u00e1les-Morales 2017. Shell oxygen isotope values and sclerochronology of the limpet <em>Patella vulgata<\/em> Linnaeus 1758 from northern Iberia: implications for the reconstruction of past seawater temperatures. Palaeogeography, Palaeoclimatology, Palaeoecology 475, 162\u2013175 (and reprint in 484, 48\u201361).  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(137) Prendergast AL and <strong>Sch\u00f6ne BR<\/strong> 2017. Oxygen isotopes from limpet shells: implications for palaeothermometry and seasonal shellfish foraging studies in the Mediterranean. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 33\u201347.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(136) Zhao L, Walliser EO, Mertz-Kraus R and <strong>Sch\u00f6ne BR<\/strong> 2017. Unionid shells (<em>Hyriopsis cumingii<\/em>) record manganese cycling at the sediment-water interface in a shallow eutrophic lake in China (Lake Taihu). Palaeogeography, Palaeoclimatology, Palaeoecology 484, 97\u2013108.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(135) Milano S, Nehrke G, Wanamaker Jr AD, Ballesta-Artero I, Brey T and <strong>Sch\u00f6ne BR<\/strong> 2017. The effects of environment on <em>Arctica islandica<\/em> shell formation and architecture. Biogeosciences 14, 1577\u20131591.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(134) Casella LA, Griesshaber E, Yin X, Ziegler A, Mavromatis V, M\u00fcller D, Ritter A-C, Hippler D, Harper EM, Dietzel M, Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Angiolini L and Schmahl WW 2017. Experimental diagenesis: Insights on aragonite to calcite transformation of <em>Arctica islandica<\/em> shells by hydrothermal treatment. Biogeosciences 14, 1461\u20131492.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(133) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong>, Shirai K, Takahata N, Ishida A and Sano Y 2017. Minute co-variations of Sr\/Ca ratios and microstructures in the aragonitic shell of <em>Cerastoderma edule<\/em> (Bivalvia) \u2013 Are geochemical variations at the ultra-scale masking potential environmental signals? Geochimica et Cosmochimica Acta 205, 256\u2013271.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(132) Dassi\u00e9 E, DeLong K, Kilbourne H, Williams B, Abram N, Brenner L, Brahmi C, Cobb K, Corr\u00e8ge T, Dissard D, Emile-Geay J, Evangelista H, Evans M, Farmer J, Felis T, Gagan M, Gillikin D, Goodkin N, Khodri M, Lavagnino AC, LaVigne M, Lazareth C, Linsley B, Lough J, McGregor H, Nurhati I, Ouellette G, Perrin L, Raymo M, Rosenheim B, Sanstrom M, <strong>Sch\u00f6ne BR<\/strong>, Sifeddine A, Stevenson S, Thompson DM, Waite A, Wanamaker A and Wu H 2017. Saving our marine archives. EOS Transactions 98, 32\u201336.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(131) Betts MW, Burchell M and <strong>Sch\u00f6ne BR<\/strong> 2017. An economic history of the maritime woodland period in Port Joli Harbour, Nova Scotia. Journal of the North Atlantic 10, 18\u201341.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(130) Colonese AC, Netto SA, Francisco AS, DeBlais P, Villagran XS, Hausmann N, Sunderlick Faria D, Prendergast A, <strong>Sch\u00f6ne BR<\/strong> and Fonseca Giannini PC 2017. Shell sclerochronology and stable isotopes of the bivalve <em>Anomalocardia flexuosa<\/em> (Linnaeus, 1767) from southern Brazil: implications for environmental and archaeological studies. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 7\u201321.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(129) Johnson ALA, Valentine A, Leng M, Sloane HJ and <strong>Sch\u00f6ne BR<\/strong> 2017. Isotopic temperatures from the Early and Mid-Pliocene of the US Middle Atlantic Coastal Plain, and their implications for the cause of regional marine climate change. Palaios 32, 250\u2013269.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(128) Marali S, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R, Griffin SM, Wanamaker Jr AD, Butler PG, Holland HA and Jochum KP 2017. Reproducibility of trace element variations (Na\/Ca, Mg\/Ca, Mn\/Ca, Sr\/Ca, and Ba\/Ca) within and between specimens of the bivalve <em>Arctica islandica<\/em> \u2013 a LA-ICP-MS line scan study. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 109\u2013128.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(127) Marali S, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R, Griffin SM, Wanamaker Jr AD, Matras U and Butler PG 2017. Ba\/Ca ratios in shells of <em>Arctica islandica<\/em> \u2013 Potential environmental proxy and crossdating tool. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 347\u2013361.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(126) Zhao L, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2017. Controls on strontium and barium incorporation into freshwater bivalve shells (<em>Corbicula fluminea<\/em>). Palaeogeography, Palaeoclimatology, Palaeoecology 465, 386\u2013394.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(125) Milano S, <strong>Sch\u00f6ne BR<\/strong> and Witbaard R 2017. Changes of shell microstructural characteristics of <em>Cerastoderma edule<\/em> (Bivalvia) - A novel proxy for water temperature. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 395\u2013406.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(124) Butler PG and <strong>Sch\u00f6ne BR<\/strong> 2017. New research in the methods and applications of sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 465, 295\u2013299.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(123) <strong>Sch\u00f6ne BR<\/strong>, Schmitt K and Maus M 2017. Effects of sample pretreatment and external contamination on bivalve shell and Carrara marble \u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C signatures. Palaeogeography, Palaeoclimatology, Palaeoecology 484, 22\u201332.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(122) Zhao L, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R and Yang F 2017. Insights from sodium into the impacts of elevated <em>p<\/em>CO<sub>2<\/sub> and temperature on bivalve shell formation. Journal of Marine Experimental Biology and Ecology 486, 148\u2013154.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(121) Zhao L, <strong>Sch\u00f6ne BR<\/strong>, Mertz-Kraus R and Yang F, 2017. Sodium provides unique insights into transgenerational effects of ocean acidification on bivalve shell formation. Science of the Total Environment 577, 360\u2013366.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(120) Zhao L, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2016. Delineating the role of calcium in shell formation and elemental composition of <em>Corbicula fluminea<\/em> (Bivalvia). Hydrobiologia 790, 259\u2013272.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(119) Lindauer S, Marali S, <strong>Sch\u00f6ne, BR<\/strong>, Uerpmann H-P, Kromer B and Hinderer M 2016. Investigating the local reservoir effect and stable isotopes of shells from South-East Arabia. Radiocarbon 59, 355\u2013372.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(118) <strong>Sch\u00f6ne BR<\/strong> and Krause RA 2016. Retrospective environmental biomonitoring \u2013 Mussel Watch expanded. Global Planetary Change 144, 228\u2013251.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(117) Walliser EO, Lohmann G, Niezgodzki I, T\u00fctken T and <strong>Sch\u00f6ne BR<\/strong> 2016<strong>.<\/strong> Response of Central European SST to atmospheric <em>p<\/em>CO<sub>2<\/sub> forcing during the Oligocene \u2013 A combined proxy data and numerical climate model approach. Palaeogeography, Palaeoclimatology, Palaeoecology 459, 552\u2013569. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(116) Milano S, <strong>Sch\u00f6ne BR<\/strong>, Wang S and M\u00fcller WE 2016. Impact of high <em>p<\/em>CO<sub>2<\/sub> on shell structure of the bivalve <em>Cerastoderma edule<\/em>. Marine Environmental Research, 119, 144\u2013155.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(115) Milano S, Prendergast AL and <strong>Sch\u00f6ne BR<\/strong> 2016. Effects of cooking on mollusk shell structure and chemistry: implications for archeology and paleoenvironmental reconstruction. Journal of Archaeological Science: Reports 7, 14\u201316.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(114) Riechelmann DFC, Maus M, Dindorf W, Konter O, <strong>Sch\u00f6ne BR<\/strong> and Esper J 2016. Comparison of \u03b4<sup>13<\/sup>C and \u03b4<sup>18<\/sup>O from cellulose, whole wood, and resin-free whole wood from an old high elevation <em>Pinus uncinata<\/em> in the Spanish central Pyrenees. Isotopes in Environmental &amp; Health Studies 52, 694\u2013705.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(113) Prendergast A, Stevens RE, O\u2019Connell TC, Fadlalak A, Touati M, al-Mzeine A, <strong>Sch\u00f6ne BR<\/strong>, Hunt CO and Barker G 2016. Changing patterns of eastern Mediterranean shellfish exploitation in the Late Glacial and Early Holocene: oxygen isotope evidence from gastropod in Epipaleolithic to Neolithic human occupation layers at the Haua Fteah cave, Libya. Quaternary International 407, 80\u201393.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(112) Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Hoffmann R &amp; Niedermayr A 2016. Mollusc and brachiopod skeletal hard parts: intricate archives of their marine environment. Sedimentology 63, 1\u201359.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(111) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong> and Mertz-Kraus R 2015. Strontium\/lithium ratio in shells of <em>Cerastoderma edule<\/em> (Bivalvia) - A new potential temperature proxy for brackish environments. Chemical Geology 417, 341\u2013355.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(110) Esper J, Schneider L, Smerdon J, <strong>Sch\u00f6ne BR<\/strong> and B\u00fcntgen U 2015. Signals and memory in tree-ring width and density data. Dendrochronologia 35, 62\u201370.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(109) Peharda M, Puljas S, Chauvaud L, <strong>Sch\u00f6ne BR<\/strong>, Ezgeta-Bali\u010d D and Th\u00e9bault J 2015. Growth and longevity of <em>Lithophaga lithophaga<\/em> \u2013 what can we learn from shell structure and stable isotope composition? Marine Biology 162, 1531\u20131540.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(108) Beierlein L, Salvigsen O, <strong>Sch\u00f6ne BR<\/strong>, Mackensen A, Brey T 2015. The seasonal water temperature cycle in the Arctic Dicksonfjord (Svalbard) during the Holocene Climate Optimum derived from sub-fossil <em>Arctica islandica<\/em> shells. The Holocene 25, 1197\u20131207.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(107) Surge D and <strong>Sch\u00f6ne BR<\/strong> 2015. Bivalve sclerochronology. In: WJ Rink and JW Thompson (Eds), Encyclopedia of Scientific Dating Methods. Springer, 108\u2013115.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(106) Carilli J, Williams B,<strong> Sch\u00f6ne BR<\/strong>, Krause RA and Fallon S 2015. Historical contaminant records from sclerochronological archives (corals, sclerosponges, bivalves, coralline algae). Chapter 14. In: Jules M Blais, Michael R Rosen and John P Smol (Eds), Environmental Contaminants: Using natural archives to track sources and long-term trends of pollution. Developments in Paleoenvironmental Research 18, 355\u2013391.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(105) Jolivet A, Chauvaud L, Huchette S, Legoff C, Th\u00e9bault J, Nasreddine K, <strong>Sch\u00f6ne BR<\/strong> and Clavier J 2015. The ormer (<em>Haliotis tuberculata<\/em>): a new, promising paleoclimatic tool. Palaeogeography, Palaeoclimatology, Palaeoecology 427, 32\u201340.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(104) Walliser EO, <strong>Sch\u00f6ne BR<\/strong>, T\u00fctken T, Zirkel J, Grimm KI and Pross J 2015. The bivalve <em>Glycymeris planicostalis<\/em> as a high-resolution paleoclimate archive for the Rupelian (early Oligocene) of Central Europe. Climate of the Past 11, 653\u2013668.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(103) Marali S and <strong>Sch\u00f6ne BR<\/strong> 2015. Oceanographic control on shell growth of <em>Arctica islandica<\/em> (Bivalvia) in surface waters of Northeast Iceland - implications for paleoclimate reconstructions. Palaeogeography, Palaeoclimatology, Palaeoecology 420, 138\u2013149.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(102) Alt KW, Knipper C, Peters D, M\u00fcller W, Maurer A-F, Kollig I, M\u00fcller C, Karimnia S, Brandt G, Roth C, Rosner M, Mende B, <strong>Sch\u00f6ne BR<\/strong>, Vida T, von Freeden U 2014. Lombards on the move \u2013 An integrative study of the Migration Period cemetery of Sz\u00f3l\u00e1d, Hungary. PLOS One 9, e110793.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(101) Holland HA, <strong>Sch\u00f6ne<\/strong><strong> BR<\/strong>, Marali S and Jochum KP 2014. History of bioavailable lead and iron in the Greater North Sea and Iceland during the last millennium a bivalve sclerochronological reconstruction. Marine Pollution Bulletin 87, 104\u2013116.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(100) Wacker U, Fiebig J, <strong>Sch\u00f6ne BR<\/strong>, Bahr A, Friedrich O, T\u00fctken T, Gischler E and Joachimski MM 2014. Empirical calibration of the clumped isotope paleothermometer using calcites of various origins. Geochimica et Cosmochimica Acta 121, 127\u2013144.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(99) Burchell M, Betts M, Patton A.K. and <strong>Sch\u00f6ne BR<\/strong> 2014. Preliminary analysis of stable oxygen isotopes and shell growth in the soft-shelled clam <em>Mya arenaria<\/em>: Implications interpreting seasonality and shellfish harvesting in Port Joli, Nova Scotia. North Atlantic Archaeology 3, 93\u2013108.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(98) Riechelmann DFC, Maus M, Dindorf W,<strong> Sch\u00f6ne BR<\/strong>, Scholz D and Esper J 2014. Sensitivity of whole wood stable carbon and oxygen isotope values to milling procedures. Rapid Communications in Mass Spectrometry 28, 1371\u20131375.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(97) F\u00fcllenbach CS, <strong>Sch\u00f6ne BR<\/strong> and Branscheid R 2014. Microstructures in shells of the freshwater gastropod <em>Viviparus viviparus<\/em>: A potential sensor for temperature change? Acta Biomaterialia 10, 3911\u20133921.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(96) Holland HA, <strong>Sch\u00f6ne BR<\/strong>, Lipowski C and Esper J. 2014 Decadal climate variability of the North Sea during the last millennium reconstructed from bivalve shells (<em>Arctica islandica<\/em>). The Holocene 24, 771\u2013786. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(95) Mettam C, Johnson AL, Nunn EV and <strong>Sch\u00f6ne BR<\/strong> 2014. Stable isotope (\u03b4<sup>18<\/sup>O and \u03b4<sup>13<\/sup>C) sclerochronology of Callovian (Middle Jurassic) bivalves (<em>Gryphaea<\/em> (<em>Bilobissa<\/em>) <em>dilobotes<\/em>) and belemnites (<em>Cylindroteuthis<\/em> <em>puzosiana<\/em>) from the Peterborough Member of the Oxford Clay Formation (Cambridgeshire, England): evidence of palaeoclimate, water depth and belemnite behaviour. Palaeogeography, Palaeoclimatology, Palaeoecology 399, 187\u2013201.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(94) Burchell M, Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Cannon A and Schwarcz HP 2014. Biogeochemical signatures of archaeological shells: Implications for interpreting seasonality at shell midden sites using high-resolution stable isotope sclerochronology. In: M Roksandic, S Mendon\u00e7a, S Eggers, M Burchell and D Klokler (Eds), The Cultural Dynamics of Shell-Matrix Sites. University of New Mexico Press, 241\u2013249.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(93) <strong>Sch\u00f6ne BR<\/strong>, Burchell M, Brombacher LC and Orchard TJ 2020. Sclerochronological implications for seasonal settlements on Haida Gwaii during the late pre-contact era. In: Meyer C, Held P, Knipper C, Nicklisch N (Eds.), Der Zahn der Zeit. Mensch und Kultur im Spiegel interdisziplin\u00e4rer Forschung. Festschrift f\u00fcr Kurt W. Alt. Ver\u00f6ffentlichungen des Landesamtes f\u00fcr Denkmalpflege und Arch\u00e4ologie Sachsen-Anhalt 77, 249\u2013257.     <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(92) Yan L, <strong>Sch\u00f6ne BR<\/strong>, Schengrong L and Yan Y 2014. Shells of <em>Paphia undulata<\/em> (Bivalvia) from the South China Sea as potential proxy archives of the East Asian summer monsoon \u2013 a sclerochronological calibration study. Journal of Oceanography 70, 35\u201344.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(91) Shirai K, <strong>Sch\u00f6ne BR<\/strong>, Miyaji T, Radermacher P, Krause RA Jr and Tanabe K 2014. Assessment of the mechanism of elemental incorporation into bivalve shells (<em>Arctica islandica<\/em>) based on elemental distribution at the ultrastructural scale. Geochimica et Cosmochimica Acta 126, 307\u2013320.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(90) Foley SF, Gronenborn D, Andreae MO, Kadereit JW, Esper J, Scholz D, P\u00f6schl U, Jacob DE, <strong>Sch\u00f6ne BR<\/strong>, Schreg R, V\u00f6tt A, Jordan D, Lilieveld J, Weller CG, Alt KW, Gaudzinski-Windheuser S, Bruhn K-C, Sirocko F, H Tost and Crutzen PJ 2013. The Palaeoanthropocene \u2013 The beginnings of anthropogenic environmental change. Anthropocene 3, 83\u201388.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(89) Quinn TM and <strong>Sch\u00f6ne BR<\/strong> 2013. Corals, sclerosponges and mollusks. In: SA Elias and C Mock (Eds), Encyclopedia of Quaternary Science. 2<sup>nd<\/sup> ed. Elsevier, 795\u2013799. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(88) <strong>Sch\u00f6ne BR<\/strong> 2013. <em>Arctica islandica<\/em> (Bivalvia): A unique paleoenvironmental archive of the northern North Atlantic Ocean. Global and Planetary Change 111, 199\u2013225. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(87) Wacker U, Fiebig J and <strong>Sch\u00f6ne BR<\/strong> 2013. Clumped isotope analysis of carbonates: comparison of two different acid digestion techniques. Rapid Communications in Mass Spectrometry 27, 1631\u20131642.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(86) Gischler E, Thomas AL, Droxler AW, Webster JM, Yokoyama Y and <strong>Sch\u00f6ne BR <\/strong>2013. Microfacies and diagenesis of older Pleistocene reefal deposits, Great Barrier Reef, Australia (IODP 325): A quantitative approach. Sedimentology 60, 1432\u20131466.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(85) Burchell M, Hallmann N, Martindale A, Cannon A and<strong> Sch\u00f6ne BR <\/strong>2013. Seasonality and intensity of shellfish harvesting in the north coast of British Columbia. Journal of Coastal and Island Archaeology 8, 152\u2013169.  <em><u><\/u><\/em><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(84) Burchell M, Cannon A, Hallmann N, Schwarcz H and <strong>Sch\u00f6ne BR <\/strong>2013. Refining estimates for the season of shellfish collection on the Pacific Northwest Coast: Applying high-resolution stable oxygen isotope analysis and sclerochronology. Archaeometry 55, 258\u2013267.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(83) Knipper C, Peters D, Meyer C, Maurer A-F, Muhl A, <strong>Sch\u00f6ne BR<\/strong> and Alt KW 2013. Dietary reconstruction in Migration Period Central Germany: a carbon and nitrogen isotope study. Archaeological and Anthropological Sciences 5, 17\u201332.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(82)<strong> Sch\u00f6ne BR<\/strong> and Gillikin DP 2013. Unraveling environmental histories from skeletal diaries - Advances in sclerochronology. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 1\u20135.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(81) <strong>Sch\u00f6ne BR<\/strong>, Radermacher P, Zhang Z and Jacob DE 2013. Crystal fabrics and element impurities (Sr\/Ca, Mg\/Ca, and Ba\/Ca) in shells of <em>Arctica islandica<\/em> \u2013 Implications for paleoclimate reconstructions. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 50\u201359.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(80) Lohmann G and <strong>Sch\u00f6ne BR<\/strong> 2013. Climate signatures on decadal to interdecadal time scales as obtained from mollusk shells (<em>Arctica islandica<\/em>) from Iceland. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 152\u2013162.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(79) Hallmann N, Burchell M, Martindale A, Brewster N and <strong>Sch\u00f6ne BR<\/strong> 2013. Holocene climate and cultural changes at the Dundas Islands Group, northern British Columbia, Canada \u2013 A bivalve sclerochronological approach. Palaeogeography, Palaeoclimatology, Palaeoecology 373, 163\u2013172.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(78) Burchell M, Cannon A, Hallmann N, Schwarcz HP and <strong>Sch\u00f6ne BR <\/strong>2013. Inter-site variability in the season of shellfish collection on the Central Coast of British Columbia. Journal of Archaeological Science 40, 626\u2013636.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(77) Yan L, <strong>Sch\u00f6ne BR<\/strong> and Arkhipkin A 2012. <em>Eurhomalea exalbida<\/em> (Bivalvia): a faithful recorder of climate in southern South America? Palaeogeography, Palaeoclimatology, Palaeoecology 250\u2013252, 91\u2013100. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(76) Maurer A-F, Galer SJG, Knipper C, Beierlein L, Nunn EV, Peters D, T\u00fctken T, Alt KW and <strong>Sch\u00f6ne BR<\/strong> 2012. Bioavailable <sup>87<\/sup>Sr\/<sup>86<\/sup>Sr in different environmental samples \u2013 Effects of anthropogenic contamination and implications for isoscapes in past migration studies. Science of the Total Environment 433, 216\u2013229.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(75) <strong>Sch\u00f6ne BR<\/strong> and Surge DM. 2012. Bivalve sclerochronology and geochemistry. In: Paul A Selden (Ed), Treatise of Invertebrate Paleontology, Treatise Online 46, 1\u201324, Part N (Mollusca, Bivalvia), Revised, Volume 1, Chapter 14. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(74) Knipper C, Maurer A-F, Peters D, Meyer C, Brauns M, Galer SJG, von Freeden U,<strong> Sch\u00f6ne B<\/strong>, Meller H and Alt KW 2012. Mobility in Thuringia or mobile Thuringians: A strontium isotope study from early medieval Central Germany. In: Kaiser E, Burger J and Schier W (Eds), Population dynamics in prehistory and early history. New approaches using stable isotopes and genetics. TOPOI 5. Berlin Studies of the Ancient World, 293\u2013317 (doi:10.1515\/9783110266306.287).<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(73) Ivany LC, Brey T, Huber M, Buick DP and <strong>Sch\u00f6ne BR<\/strong> 2011. El Ni\u00f1o in the Eocene greenhouse recorded by fossil bivalves and wood from Antarctica. Geophysical Research Letters 38, L16709 (doi:10.1029\/2011GL048635).<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(72) Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Irvine GV, Burchell M, Cokelet ED and Hilton M 2011. An improved understanding of the Alaska Coastal Current: The application of a bivalve growth-temperature model to reconstruct freshwater-influenced paleoenvironments. Palaios 26, 346\u2013363.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(71) Torres ME, Zima D, Falkner KK, Macdonald RW, O'Brian M, <strong>Sch\u00f6ne BR<\/strong> and Siferd T 2011. Hydrographic changes in Nares Strait (Canadian Arctic Archipelago) in recent decades based on \u03b4<sup>18<\/sup>O profiles of bivalve shells. Arctic Journal 64, 45\u201358.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(70) Wanamaker AD Jr, Kreutz KJ,<strong> Sch\u00f6ne BR<\/strong> and Introne DS 2011. Gulf of Maine shells reveal changes in seawater temperature seasonality during the Medieval Climate Anomaly and the Little Ice Age. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 43\u201351.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(69) <strong>Sch\u00f6ne BR<\/strong>, Zhang Z, Radermacher P, Th\u00e9bault J, Jacob D, Nunn EV and Maurer A-F 2011. Sr\/Ca and Mg\/Ca ratios of ontogenetically old, long-lived bivalve shells (<em>Arctica islandica<\/em>) and their function as paleotemperature proxies. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 52\u201364.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(68) <strong>Sch\u00f6ne BR<\/strong>, Wanamaker AD Jr, Fiebig J, Th\u00e9bault J and Kreutz KJ 2011. Annually resolved \u03b4<sup>13<\/sup>C<sub>shell <\/sub>chronologies of long-lived bivalve mollusks (<em>Arctica islandica<\/em>) reveal oceanic carbon dynamics in the temperate North Atlantic during recent centuries. Palaeogeography, Palaeoclimatology, Palaeoecology 302, 31\u201342.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(67) Williams M, Nelson A, Smellie J, Leng M, Jarram D, Johnson A, Haywood A, Peck V, Zalasiewicz J, Bennett C and <strong>Sch\u00f6ne BR<\/strong> 2010. Sea ice extent and seasonality for the Early Pliocene northern Weddell Sea. Palaeogeography, Palaeoclimatology, Palaeoecology 292, 306\u2013318.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(66) <strong>Sch\u00f6ne BR<\/strong>, Zhang Z, Jacob D, Gillikin DP, T\u00fctken T, Garbe-Sch\u00f6nberg D, McConnaughey T and Soldati A 2010. Effect of organic matrices on the determination of the trace element chemistry (Mg, Sr, Mg\/Ca, Sr\/Ca) of aragonitic bivalve shells (<em>Arctica islandica<\/em>) \u2013 comparison of ICP-OES and LA-ICP-MS data. Geochemical Journal 44, 23\u201337.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(65) Th\u00e9bault J, <strong>Sch\u00f6ne BR<\/strong>, Hallmann N, Barth M and Nunn EV 2009. Investigation of Li\/Ca variations in aragonitic shells of the ocean quahog <em>Arctica islandica<\/em>, northeast Iceland. Geochemistry, Geophysics, and Geosystems 10, Q12008, doi:10.1029\/2009GC002789 (15pp.). <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(64) Johnson ALA, Hickson JA, Bird A, <strong>Sch\u00f6ne BR<\/strong>, Balson PS, Heaton THE and Williams M 2009. Comparative sclerochronology of modern and mid-Pliocene (c. 3.5 Ma) <em>Aequipecten opercularis<\/em> (Mollusca, Bivalvia): an insight into past and future climate change in the north-east Atlantic region. Palaeogeography, Palaeoclimatology, Palaeoecology 284, 164\u2013179.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(63) Radermacher P, <strong>Sch\u00f6ne BR<\/strong>, Gischler E, Oschmann W, Th\u00e9bault J and Fiebig J 2009. Sclerochronology \u2013 a highly versatile tool for mariculture and reconstruction of life history traits of the queen conch, <em>Strombus gigas<\/em> (Gastropoda). Aquatic Living Resources 22, 307\u2013318.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(62) Hallmann N, Burchell M, <strong>Sch\u00f6ne BR<\/strong>, Irvine GV and Maxwell D 2009. High-resolution sclerochronological analysis of the bivalve mollusk <em>Saxidomus gigantea<\/em> from Alaska and British Columbia: techniques for revealing environmental archives and archaeological seasonality. Journal of Archaeological Science 36, 2353\u20132364.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(61) Powell MG, <strong>Sch\u00f6ne BR<\/strong> and Jacob DE 2009. Tropical marine climate during the late Paleozoic ice age using trace element analyses of brachiopods. Palaeogeography, Palaeoclimatology, Palaeoecology 280, 143\u2013149.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(60) Hetzinger S, Halfar J, Kronz A, Steneck RS, Adey W, Lebendnik A and <strong>Sch\u00f6ne BR<\/strong> 2009. High-resolution Mg\/Ca ratios in a coralline red alga as a proxy for Bering Sea temperature variations from 1902 to 1967. Palaios 24, 406\u2013412.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"><a><\/a><a>(59) <\/a>Butler PG, Richardson C, Scourse JD, Witbaard R, <strong>Sch\u00f6ne BR<\/strong>, Fraser NM, Wanamaker AD Jr, Harris I and Robertson I 2009. Accurate increment identification and the spatial extent of the common signal in five <em>Arctica islandica<\/em> chronologies from the Fladen Ground, northern North Sea. Paleoceanography 24, PA2210 (doi:10.1029\/2008PA001715). <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(58) Martindale A, Letham B, McLaren D, Archer D, Burchell M and <strong>Sch\u00f6ne BR<\/strong> 2009. Mapping of subsurface shell midden components through percussion coring: examples from the Dundas Islands. Journal of Archaeological Science 36, 1565\u20131575.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(57) Soldati AL, Jacob DE, <strong>Sch\u00f6ne BR<\/strong>, Bianchi MM and Hajduk A 2009. Seasonal periodicity of growth and composition in valves of <em>Diplodon chilensis patagonicus <\/em>(D\u2019Orbigny 1935). Journal of Molluscan Studies 75, 75\u201381.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(56) Rodland DL, <strong>Sch\u00f6ne BR<\/strong>, Baier S, Zhang Z, Dreyer W and Page NA 2009. Changes in gape frequency, siphon activity and thermal response in the freshwater bivalves <em>Anodonta cygnea<\/em> and <em>Margaritifera falcata<\/em>. Journal of Molluscan Studies 75, 51\u201357.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(55) <strong>Sch\u00f6ne BR <\/strong>and Fiebig J, 2009. Seasonality in the North Sea during the Aller\u00f8d and Late Medieval Climate Optimum using bivalve sclerochronology. International Journal of Earth Sciences 98, 83\u201398.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(54) Dunca E, Mutvei H, G\u00f6ransson P, M\u00f6rth C-M,<strong> Sch\u00f6ne BR<\/strong>, Whitehouse MJ, Elfman M &amp; Baden SP, 2009. Using ocean quahog (<em>Arctica islandica<\/em>) shells to reconstruct palaeoenvironment in \u00d6resund, Kattegat and Skaggerak, Sweden. International Journal of Earth Sciences 98, 3\u201317.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(53) Wanamaker AD Jr, Kreutz KJ, <strong>Sch\u00f6ne BR<\/strong>, Maasch KA, Pershing A, Borns HW, Introne DS and Feindel S, 2009. A late Holocene paleo-productivity record in the Western Gulf of Maine, USA, inferred from growth histories of the long-lived ocean quahog (<em>Arctica islandica<\/em>). International Journal of Earth Sciences 98, 19\u201329.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(52) Hallmann N, <strong>Sch\u00f6ne BR<\/strong>, Strom A and Fiebig J 2008. An intractable climate archive - Sclerochronological and shell oxygen isotope analyses of the Pacific geoduck, <em>Panopea abrupta <\/em>(bivalve mollusk) from Protection Island (Washington State, USA. Palaeogeography, Palaeoclimatology, Palaeoecology 269, 115\u2013126.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(51) Nielsen JK, Helama S and<strong> Sch\u00f6ne BR<\/strong>, 2008. Shell growth history of geoduck clam (<em>Panopea abrupta<\/em>) in Parry Passage, British Columbia, Canada - temporal variation in annuli and the Pacific Decadal Oscillation. Journal of Oceanography 64, 951\u2013960.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(50) Owen EF, Wanamaker AD Jr, Feindel SC, <strong>Sch\u00f6ne BR<\/strong> and Rawson PD, 2008. Stable carbon and oxygen isotope fractionation in bivalve (<em>Placopecten magellanicus<\/em>) larval aragonite. Geochimica et Cosmochimica Acta 72, 4687\u20134698.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(49) <strong>Sch\u00f6ne BR<\/strong>, 2008. The curse of physiology \u2013 Challenges and opportunities in the interpretation of geochemical data from mollusk shells. Geo-Marine Letters 28, 269\u2013285.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(48) Wanamaker AD Jr, Kreutz KJ,<strong> Sch\u00f6ne BR<\/strong>, Pettigrew N, Borns HW, Introne DS, Belknap D, Maasch KA and Feindel S 2008. Coupled North Atlantic slopewater forcing on Gulf of Maine temperatures over the past millennium. Climate Dynamics 31, 183\u2013194.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(47) Fenger T, Surge D, <strong>Sch\u00f6ne B<\/strong> and Milner N 2007. Sclerochronology and geochemical variation in limpet shells (<em>Patella vulgata<\/em>): A new archive to reconstruct Holocene coastal sea surface temperature. Geochemistry, Geophysics, and Geosystems 8, Q07001, doi:10.1029\/2006GC001488. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(46) Halfar J, Steneck R, <strong>Sch\u00f6ne B<\/strong>, Moore GWK, Joachimski M, Kronz A, Fietzke J and Estes J 2007. Coralline alga reveals first marine record of subarctic North Pacific climate change. Geophysical Research Letters 34, L07702, doi:10.1029\/2006GL028811.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(45) Quinn TM and <strong>Sch\u00f6ne BR<\/strong> 2007. Corals, sclerosponges and mollusks. In: SA Elias (Ed), Encyclopedia of Quaternary Science. 1<sup>st<\/sup> ed. Elsevier, 1646\u20131652. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(44) Miyaji T, Tanabe K and <strong>Sch\u00f6ne BR<\/strong> 2007. Environmental controls on daily shell growth of <em>Phacosoma japonicum <\/em>(Bivalvia: Veneridae) from Japan. Marine Ecology \u2013 Progress Series 336, 141\u2013150.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(43) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Wehrmann A, Heidel B, Oschmann W, Zhang Z, Fiebig J and Beck L 2007. Combined sclerochronologic and oxygen isotope analysis of gastropod shells (<em>Gibbula cineraria<\/em>, North Sea): life-history traits and utility as a high-resolution environmental archive for kelp forests. Marine Biology 150, 1237\u20131252.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(42) Helama S, <strong>Sch\u00f6ne BR<\/strong>, Kirchhefer AJ, Nielsen JK and Rodland DL 2007. Compound response of marine and terrestrial ecosystems to varying climate: pre-anthropogenic perspective from bivalve shell growth increments and tree-rings. Marine Environmental Research 63, 185\u2013199.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(41) <strong>Sch\u00f6ne BR<\/strong>, Page NA, Rodland DL, Fiebig J, Baier S, Pfeiffer M, Helama S and Oschmann W 2007. ENSO-coupled precipitation records (1959\u20132004) based on shells of freshwater bivalve mollusks (<em>Margaritifera falcata<\/em>) from British Columbia. International Journal of Earth Sciences 96, 525\u2013540.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(40) Dunca E, Doguzhaeva L,<strong> Sch\u00f6ne BR<\/strong> and van de Schootbrugge B 2006. Growth patterns in rostra of the Middle Jurassic belemnite <em>Megateuthis giganteus<\/em>: controlled by the moon? Acta Universitatis Carolinae Geologica 49, 109\u2013117 (Prague, ISSN 0001-7132).  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(39) Helama S, <strong>Sch\u00f6ne BR<\/strong>, Black BA and Dunca E 2006. Constructing long-term proxy series for aquatic environments with absolute dating control using a sclerochronological approach: introduction and advanced applications. Marine and Freshwater Research 57, 591\u2013599.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(38) Rodland DL, <strong>Sch\u00f6ne BR<\/strong>, Helama S, Nielsen JK and Baier S 2006. A clockwork mollusc: ultradian rhythms in bivalve activity revealed by digital photography. Journal of Experimental Marine Biology and Ecology 334, 316\u2013332.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(37) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Surge DM, Fiebig J, Gillikin DP, Baier SM and Goewert A 2006. Comment on \u201cStable carbon isotopes in freshwater mussel shells: Environmental record or marker for metabolic activity?\u201d by J. Geist et al.  (2005). Geochimica et Cosmochimica Acta 70, 2658\u20132661.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(36) <strong>Sch\u00f6ne BR<\/strong>, Rodland DL, Fiebig J, Oschmann W, Goodwin DH, Flessa KW and Dettman DL 2006. Reliability of multi-taxon, multi-proxy reconstructions of environmental conditions from accretionary biogenic skeletons. Journal of Geology 114, 267\u2013285.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(35) <strong>Sch\u00f6ne BR<\/strong> and Giere O 2005. Growth increments and stable isotope variation in shells of the deep-sea hydrothermal vent bivalve mollusk <em>Bathymodiolus brevior <\/em>from the North Fiji Basin, Pacific Ocean. Deep-Sea Research I 52, 1896\u20131910.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(34) Fiebig J, <strong>Sch\u00f6ne BR<\/strong> and Oschmann W 2005. High precision oxygen and carbon isotope analysis of very small (10\u201330\u00b5g) amounts of carbonates using CF-IRMS. Rapid Communications in Mass Spectrometry 19, 2355\u20132358.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(33) <strong>Sch\u00f6ne BR<\/strong> and Surge D 2005. Looking back over Skeletal Diaries \u2013 High-resolution Environmental Reconstructions from Accretionary Hard Parts of Aquatic Organisms. Palaeogeography, Palaeoclimatology, Palaeoecology 228, 1\u20133.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(32)<strong> Sch\u00f6ne BR<\/strong>, Fiebig J, Pfeiffer M, Gle\u00df R, Hickson J, Johnson ALA, Dreyer W and Oschmann W 2005. Climate records from a bivalved Methuselah (<em>Arctica islandica<\/em>, Mollusca; Iceland). Palaeogeography, Palaeoclimatology, Palaeoecology 228, 130\u2013148.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(31) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Fiebig J and Pfeiffer M 2005. Mutvei\u2019s solution: an ideal agent for resolving microgrowth structures of biogenic carbonates. Palaeogeography, Palaeoclimatology, Palaeoecology 228, 149\u2013166.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(30) Dunca E, <strong>Sch\u00f6ne BR<\/strong> and Mutvei H 2005. Freshwater bivalves tell of past climates: But how clearly do shells from polluted rivers speak? Palaeogeography, Palaeoclimatology, Palaeoecology 228, 43\u201357.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(29) <strong>Sch\u00f6ne BR<\/strong>, Hickson J and Oschmann W 2005. Reconstruction of subseasonal environmental conditions using bivalve mollusk shells \u2013 a graphical model. GSA, Special Papers 395, 21\u201331.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(28) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Mutvei H, Baier S and Fiebig J 2005. Scandinavian climate since the late 18th century reconstructed from shells of bivalve mollusks. Zeitschrift der Deutschen Gesellschaft f\u00fcr Geowissenschaften 156, 501\u2013516.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(27) <strong>Sch\u00f6ne BR<\/strong>, Pfeiffer M, Pohlmann T and Siegismund F 2005. A seasonally resolved bottom water temperature record for the period of AD 1866\u20132002 based on shells of <em>Arctica islandica <\/em>(Mollusca, North Sea). International Journal of Climatology 25, 947\u2013962.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(26) <strong>Sch\u00f6ne BR<\/strong>, Houk SD, Freyre Castro AD, Fiebig J, Kr\u00f6ncke I, Dreyer W and Oschmann W 2005. Daily growth rates in shells of <em>Arctica islandica<\/em>: Assessing subseasonal environmental controls on a long-lived bivalve mollusk. Palaios 20, 78\u201392.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(25) <strong>Sch\u00f6ne BR<\/strong>, Freyre Castro AD, Fiebig J, Houk SD, Oschmann W and Kr\u00f6ncke I 2004. Sea surface water temperatures over the period 1884\u20131983 reconstructed from oxygen isotope ratios of a bivalve mollusk shell (<em>Arctica islandica<\/em>, southern North Sea). Palaeogeography, Palaeoclimatology, Palaeoecology 212, 215\u2013232.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(24) <strong>Sch\u00f6ne BR<\/strong>, Dunca E, Mutvei H and Norlund U 2004. A 217-year record of summer air temperature reconstructed from freshwater pearl mussels (<em>M. margarifitera<\/em>, Sweden). Quaternary Science Reviews 23, 1803\u20131816 + 2057.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(23) <strong>Sch\u00f6ne BR<\/strong>, Oschmann W, Tanabe K, Dettman D, Fiebig J, Houk SD and Kanie Y, 2004. Holocene seasonal environmental trends at Tokyo Bay, Japan, reconstructed from bivalve mollusk shells - implications for changes in the East Asian monsoon and latitudinal shifts of the Polar Front. Quaternary Science Reviews 23, 1137\u20131150.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(22) Goodwin DH, Flessa KW, T\u00e9llez-Duarte MA, Dettman DL, <strong>Sch\u00f6ne BR<\/strong> and Avila-Serrano GA, 2004. Detecting time-averaging and spatial mixing using oxygen isotope variation: A case study. Palaeogeography, Palaeoclimatology, Palaeoecology 205, 1\u201321.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(21) Dettman DL, Flessa KW, Roopnarine PD, <strong>Sch\u00f6ne BR<\/strong> and Goodwin DH, 2004. The use of oxygen isotope variation in shells of estuarine mollusks as a quantitative record of seasonal and annual Colorado River discharge. Geochimica et Cosmochimica Acta 68, 1253\u20131263.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(20) <strong>Sch\u00f6ne BR<\/strong>, Oschmann W, Kr\u00f6ncke I, Dreyer W, Janssen R, Rumohr H, Houk SD, Freyre Castro AD, Dunca E and R\u00f6ssler J, 2003. North Atlantic Oscillation dynamics recorded in shells of a long-lived bivalve mollusk. Geology 31, 1037\u20131040.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(19) <strong>Sch\u00f6ne BR<\/strong>, Kr\u00f6ncke I, Houk SD, Freyre Castro AD and Oschmann W, 2003. The cornucopia of chilly winters: ocean quahog (<em>Arctica islandica<\/em> L., Mollusca) master chronology reveals bottom water nutrient enrichment during colder winters (North Sea). Senckenbergiana Maritima 32, 165\u2013175.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(18) <strong>Sch\u00f6ne BR<\/strong>, Flessa KW, Dettman DL and Goodwin DH, 2003. Upstream dams and downstream clams: Growth rates of bivalve mollusks unveil impact of river management on estuarine ecosystems (Colorado River delta, Mexico). Estuarine, Coastal and Shelf Science 58, 715\u2013726.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(17) Goodwin DH, <strong>Sch\u00f6ne BR<\/strong> and Dettman DL, 2003. Resolution and fidelity of oxygen isotopes as paleotemperature proxies in bivalve mollusk shells: models and observations. Palaios 18, 110\u2013125.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(16) <strong>Sch\u00f6ne BR<\/strong>, Tanabe K, Dettman DL and Sato S, 2003. Environmental controls on shell growth rates and \u03b4<sup>18<\/sup>O of the shallow-marine bivalve mollusk <em>Phacosoma japonicum<\/em> in Japan. Marine Biology 142, 473\u2013485.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(15)<strong> Sch\u00f6ne BR<\/strong>, 2003. A \u2018clam-ring\u2019 master-chronology constructed from a short-lived bivalve mollusc from the northern Gulf of California, USA. The Holocene 13, 39\u201349.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(14) <strong>Sch\u00f6ne BR<\/strong> and Bentley D, 2002. Use of HMDS (hexamethyldisilazane) to dry organic microstructures in etched bivalve mollusk and barnacle shells. The Nautilus 116, 25\u201331.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(13) <strong>Sch\u00f6ne BR<\/strong>, Lega J, Flessa KW, Goodwin DH and Dettman DL, 2002. Reconstructing daily temperatures from growth rates of the intertidal bivalve mollusk <em>Chione cortezi<\/em> (northern Gulf of California, Mexico). Palaeogeography, Palaeoclimatology, Palaeoecology 184, 131\u2013146.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(12) <strong>Sch\u00f6ne BR<\/strong>, Goodwin DH, Flessa KW, Dettman DL and Roopnarine PD, 2002. Sclerochronology and growth of the bivalve mollusks <em>Chione (Chionista) fluctifraga <\/em>and <em>C. (Chionista) cortezi<\/em> in the northern Gulf of California, Mexico. The Veliger 45, 45\u201354.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(11) <strong>Sch\u00f6ne BR<\/strong> and Schweingruber FH, 2001. Dendrochronologische Untersuchungen zur Verwaldung der Alpen am Beispiel eines inneralpinen Trockentals (Ramosch, Unterengadin, Schweiz). Botanica Helvetica 111, 151\u2013168.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(10) Goodwin DH, Flessa KW, <strong>Sch\u00f6ne BR <\/strong>and Dettman DL, 2001. Cross-calibration of daily growth increments, stable isotope variation, and temperature in the Gulf of California bivalve mollusk <em>Chione cortezi<\/em>: implications for environmental analysis. Palaios 16, 387\u2013398.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (9) <strong>Sch\u00f6ne BR<\/strong> and Schweingruber FH, 1999. Verzwergte Laubh\u00f6lzer: anatomische und morphologische Besonderheiten sowie \u00f6kologische Bedeutung. Schweizerische Zeitschrift f\u00fcr Forstwesen 150, 132\u2013141; Zurich.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (8) <strong>Sch\u00f6ne BR<\/strong>, 1999. Scleroecology: Implications for ecotypical dwarfism in oxygen-restricted environments (Middle Devonian, Rheinisches Schiefergebirge). Senckenbergiana lethaea 79, 35\u201341.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (7) <strong>Sch\u00f6ne BR<\/strong>, 1998. Anatomy, morphology, physiology and ecological significance of dwarfed trees. Proc.   Int. Conf. Dendrochron. Environ. Trends, Eurodendro 98, June17\u201321, 98, Kaunas, Lithuania: 209\u2013218; Kaunas.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (6) <strong>Sch\u00f6ne BR<\/strong> and Langenstrassen F 1998. Die \u2018Bonzeler Grenzschicht\u2019 im Typusprofil bei Lennestadt (Eifel\/Givet-Stufe, Rheinisches Schiefergebirge). Geologica et Palaeontologica 32, 127\u2013139.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (5) <strong>Sch\u00f6ne BR<\/strong>, Basse M and May A, 1998. Korrelationen des Eifelium\/Givetium-Grenzbereichs im Rheinischen Schiefergebirge. Senckenbergiana lethaea 77, 233\u2013242.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (4) <strong>Sch\u00f6ne BR<\/strong>, 1997. Der <em>otomari<\/em>-Event und seine Auswirkungen auf die Fazies des Rhenoherzynischen Schelfs (Devon, Rheinisches Schiefergebirge). G\u00f6ttinger Arbeiten zur Geologie und Pal\u00e4ontologie 70, 1\u2013140.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (3) <strong>Sch\u00f6ne BR<\/strong> and Schubert M, 1996. Gekr\u00fcmmte Dacryoconariden aus der Odershausen-Formation (Mittel-Devon; \u201cBlauer Bruch\u201d, Bad Wildungen, Ense). Senckenbergiana lethaea 76, 121\u2013131.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\"> (2) <strong>Sch\u00f6ne BR<\/strong>, 1996. Allochrone Variationen bei <em>Nowakia (Nowakia)<\/em> ex gr. <em>otomari<\/em> Bou\u010dek &amp; Prantl 1959 (Dacryoconarida, Rheinisches Schiefergebirge). Neues Jahrbuch zur Geologie und Pal\u00e4ontologie, Monatshefte 1996, 651\u2013671.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Sch\u00f6ne BR, 1996. V<em>iriatellina holochlidana<\/em> n.sp. aus der Oderhausen-Formation von Bad Wildungen (Dacryoconarida, Mittel-Devon, Kellerwald). Neues Jahrbuch zur Geologie und Pal\u00e4ontologie, Monatshefte 1996, 161\u2013168.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><em><strong>Other publications:<\/strong> <\/em><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\"} -->\n<p class=\"has-normal-font-size\">(14) Tian Y, Koncz I, Farag\u00f3 N, Knipper C, Friedrich R, Vyas D, Samu L, Spekker O, Szeniczey T, Hajdu T, Mende B, Tomka P, Pap I, Czig\u00e1ny D, Radzeviciute R, Traverso L, Gnecchi-Ruscone G, Francalacci P, <strong>Sch\u00f6ne B<\/strong>, T\u00f3th G, Sz\u00e9cs\u00e9nyi-Nagy A, le Roux P, Alt K, Hofmanov\u00e1 Z, Pohl W, Krause J, Vida T and Geary P 2025. Unveiling the complexity of post-Roman polity formation using ancient DNA. bioRxiv: doi:10.1101\/2025.08.18.670760<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(13) Lin G, Fang Y, <strong>Sch\u00f6ne BR<\/strong>, Rogers K, Wu H and Feng J 2024-2025. Applications of multiple isotopes in evaluating ecosystem health. Ecosystem Health and Sustainability 10, 201, 246, 252 + 281; 11, 298 + 393.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(12) Johnson ALA, Valentine AM, <strong>Sch\u00f6ne BR<\/strong>, Leng MJ and Goolaerts S 2021. Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea Basin, and its implications. Climate of the Past, Discussions, cp-2021-142.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(11) Saulsbury J, Moss D, Ivany L, Kowalewski M, Lindberg D, Gillooly J, Heim N, McClain C, Payne J, Roopnarine P, <strong>Schoene B<\/strong>, Goodwin D, Finnegan S 2019. Data from: Evaluating the influences of temperature, primary production, and evolutionary history on bivalve growth rates. Dryad Digital Repository.   https:\/\/doi.org\/10.5061\/dryad.t32st70<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(10) Grimm KI and <strong>Sch\u00f6ne BR <\/strong>2018. Chapter 39. MAINZ: Paleontological Collections of the University of Mainz (Geoscientific Collections). In: LA Beck and U Joger (Eds), Paleontological Collections of Germany, Austria and Switzerland. The History of Life of Fossil Organisms at Museums and Universities. Springer (ISBN: 978-3-319-77400-8), 403\u2013408.    <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(9) Milano S, Nehrke G, Wanamaker Jr AD, Ballesta-Artero I, Brey T and <strong>Sch\u00f6ne BR<\/strong> 2016. The effects of environment on <em>Arctica islandica<\/em> shell formation and architecture. Biogeosciences Dicsussions, doi:10.5194\/bg-2016\u2013462.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(8) Casella LA, Griesshaber E, Yin X, Ziegler A, Mavromatis V, M\u00fcller D, Ritter A-C, Hippler D, Harper EM, Dietzel M, Immenhauser A, <strong>Sch\u00f6ne BR<\/strong>, Angiolini L and Schmahl WW 2016. Experimental diagenesis: Insights on aragonite to calcite transformation of <em>Arctica islandica<\/em> shells by hydrothermal treatment. Biogeosciences Discussions, doi:10.5194\/bg-2016\u2013355.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(7) Walliser EO, <strong>Sch\u00f6ne BR<\/strong>, T\u00fctken T, Zirkel J, Grimm KI and Pross J 2014. The bivalve <em>Glycymeris planicostalis<\/em> as a high-resolution paleoclimate archive for the Rupelian (early Oligocene) of Central Europe. Climate of the Past, Discussions 10, 4085\u20134127 + Comment (2015) Climate of the Past, Discussions 10, C2168.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(6) <strong>Sch\u00f6ne BR<\/strong> and Surge D 2013. Bivalve shells - ultra high-resolution paleoclimate archives. PAGES magazine 22, 20\u201321.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(5) Grimm MC, Grimm KI, <strong>Sch\u00f6ne BR<\/strong>, Kraus J and Kraus K 2013. Herkunft der Kalksteine f\u00fcr das sp\u00e4tromanische Querhaus am Mainzer Dom. Metalla.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(4) <strong>Sch\u00f6ne BR<\/strong> 2011. Muschelschalen als Archive: Neue Einblicke in Klima und Umwelt der Vergangenheit. FOSSILIEN 28, 335\u2013345.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(3) Zirkel J and <strong>Sch\u00f6ne BR<\/strong> 2010. Fossile Funde aus dem Kasseler Meeressand. Hessen Arch\u00e4ologie 2009, Jahrbuch f\u00fcr Arch\u00e4ologie und Pal\u00e4ontologie in Hessen. Konrad Theiss Verlag GmbH, Stuttgart 2010, 18\u201319.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(2) <strong>Sch\u00f6ne BR<\/strong> and Nunn EV 2010. 2<sup>nd<\/sup> International Sclerochronology Conference, 24\u201328<sup>th<\/sup> July 2010 \u2013 Program and Abstracts. Terra Nostra 2010\/3, 174 pp, Berlin (ISSN 0946-8978). <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">(1)<strong> Sch\u00f6ne BR<\/strong> 2001. Clam-ring time-series: a new method for high-resolution environmental reconstruction. Western Society of Malacologists Annual Report 34, 39\u201344.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->\n<!-- \/wp:jgu\/tabs-item -->\n\n<!-- wp:jgu\/tabs-item {\"title\":\"Presentations\",\"slug\":\"talks\"} -->\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">Excerpt:<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\u00bbMollusk shells \u2013 High-resolution ecohydrological archives\u00ab. Invited talk. Auerinstitut Rastatt, 24. Feb.   2026.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Concha esclerocronologia: Extracting data on past climate &amp; cultural practices from shells\". Invited talk. University of the Joinville Region (Univille), 3 April 2025, Joinville, Brazil.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Paleoecological studies with mollusk shells \u2013 A sclerochronological approach\". Keynote. 9th China National Conference on Stable Isotope Ecology, 24\u201327 Nov. 2023, Xiamen, China.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Paleoenvironmental studies with mollusk shells \u2013 A sclerochronological approach\". Invited talk. 1st Sino-German Mobility Program Workshop, 6\u201310 Nov. 2023, Xi\u2019an, China.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Protein amino acid-specific nitrogen isotope analysis of bivalve shells \u2013 A novel high-resolution approach to assess past changes in marine ecosystems\". Bivalves - Where are we going, 5\u20138 Sep. 2023, Cambridge, UK.  <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Weighting of high-resolution data is crucial to avoid bias caused by sample spot geometry and variations in seasonal growth rate\". 6th International Sclerochronology Conference, 22\u201325 May 2023, Tokyo, Japan. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"<em>otomari<\/em>-Event und Ausblick auf die Exkursion\". SDS-Jahrestagung, 5\u20137 May 2023, Plettenberg. <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Can element chemical impurities in aragonitic shells of bivalves serve as proxies for environmental variability?\" Invited talk. PAGES Q-MARE Workshop \"Pre-industrial humans, climates and marine ecosystems in education and research\", 23\u201327 Jan. 2023 (virtual)   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Compound-specific isotope analysis meets bivalve sclerochronology \u2013 New avenues for paleoecological research\". Keynote. 8th China National Conference on Stable Isotope Ecology, 9\u201310 Nov. 2022, Fuzhou, China.   <\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Technical capabilities of extracting environmental data from biogenic hard parts.\" Keynote. Virtual International Sclerochronology Conference (vISC) 13\u201315 Sep.   2022.<\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">\"Ontogenetic \u03b4<sup>15<\/sup>N trends and multidecadal variability in shells of the bivalve mollusk, <em>Arctica islandica<\/em>\". AGU Ocean Sciences Meeting, 24 Feb \u2013 4 March 2022 (virtual). <\/p>\n<!-- \/wp:paragraph -->\n<!-- \/wp:jgu\/tabs-item -->\n\n<!-- wp:jgu\/tabs-item {\"title\":\"Teaching\",\"slug\":\"teaching\"} -->\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Summer Semester:<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">09.065.091.B Paleontology 1 lecture (Compulsory, BSc Geosciences)<br\/>09.065.092.B Paleontology 1 Project Seminar (Compulsory, BSc Geosciences)<br\/>09.065.300 Field practice class on Applied Paleontology (Field Internship) (Elective, BSc Geosciences)<br\/>09.065.M501 History of the Earth and Life II Project Seminar (Compulsory, MSc Geosciences)<br\/>09.065.M548 Analytical Paleontology Project Work (Elective, MSc Geosciences, Project Seminar)<br\/>09.065.M549 Biogenic Climate and Environmental Archives (Elective, MSc Geosciences, practice class)<br\/>09.065.M550 Scientific Presentation and Text Composition (Elective, MSc Geosciences, advanced seminar)  <br\/><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-big-font-size\"><strong>Winter Semester:<\/strong><\/p>\n<!-- \/wp:paragraph -->\n\n<!-- wp:paragraph {\"fontSize\":\"normal\",\"translatedWithWPMLTM\":\"1\"} -->\n<p class=\"has-normal-font-size\">09.065.243.B Paleontology 2 Field Internship (Elective, BSc Geosciences)<br\/>09.065.M630 Collecting-Preserving-Communicating advanced seminar (Elective, BSc Geosciences)<br\/>09.065.M505 Paleoclimatology \/ Climate Archives lecture (Compulsory, MSc Geosciences)<br\/>09.065.M507 Institute Seminar (Compulsory, MSc Geosciences)<\/p>\n<!-- \/wp:paragraph -->\n<!-- \/wp:jgu\/tabs-item -->\n<!-- \/wp:jgu\/tabs --><\/div>\n<!-- \/wp:column --><\/div>\n<!-- \/wp:columns --><!-- wp:paragraph -->\n<p class=\"has-big-font-size\"><\/p>\n<!-- \/wp:paragraph -->","_links":{"self":[{"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/pages\/24460","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/users\/1931"}],"replies":[{"embeddable":true,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/comments?post=24460"}],"version-history":[{"count":2,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/pages\/24460\/revisions"}],"predecessor-version":[{"id":24469,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/pages\/24460\/revisions\/24469"}],"up":[{"embeddable":true,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/pages\/22229"}],"wp:attachment":[{"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/media?parent=24460"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/categories?post=24460"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.geowiss.uni-mainz.de\/en\/wp-json\/wp\/v2\/tags?post=24460"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}