{"refrec":{"BRefID":220505,"RR":"Climate of the Past. Copernicus: Göttingen.  ISSN 1814-9324; e-ISSN 1814-9332","BEntID":212239,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":1,"RefStringPartII":". Copernicus: Göttingen.  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Past 18(4)</i>: 821-844. <a href=\"https://dx.doi.org/10.5194/cp-18-821-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-821-2022</a>","StandardTitle":"<i>crestr</i>: an R package to perform probabilistic climate reconstructions from palaeoecological datasets","AuthorsString":"Chevalier, M.","BibLvlCode":"AS"},{"BRefID":355231,"RR":"<b>van der Weijst, C.M.H.; van der Laan, K.J.; Peterse, F.; Reichart, G.-J.; Sangiorgi, F.; Schouten, S.; Veenstra, T.J.T.; Sluijs, A.</b> (2022). A 15-million-year surface- and subsurface-integrated TEX<sub>86</sub> temperature record from the eastern equatorial Atlantic. <i>Clim. Past 18(8)</i>: 1947-1962. <a href=\"https://dx.doi.org/10.5194/cp-18-1947-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-1947-2022</a>","StandardTitle":"A 15-million-year surface- and subsurface-integrated TEX<sub>86</sub> temperature record from the eastern equatorial Atlantic","AuthorsString":"van der Weijst, C.M.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":361733,"RR":"<b>Fentimen, R.; Feenstra, E.; Rüggeberg, A.; Hall, E.; Rime, V.; Vennemann, T.; Hajdas, I.; Rosso, A.; Van Rooij, D.; Adatte, T.; Vogel, H.; Frank, N.; Foubert, A.</b> (2022). A 300 000-year record of cold-water coral mound build-up at the East Melilla Coral Province (SE Alboran Sea, western Mediterranean). <i>Clim. Past 18(8)</i>: 1915-1945. <a href=\"https://dx.doi.org/10.5194/cp-18-1915-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-1915-2022</a>","StandardTitle":"A 300 000-year record of cold-water coral mound build-up at the East Melilla Coral Province (SE Alboran Sea, western Mediterranean)","AuthorsString":"Fentimen, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391398,"RR":"<b>Fogt, R.L.; Dalaiden, Q.; O'Connor, G.K.</b> (2024). A comparison of South Pacific Antarctic sea ice and atmospheric circulation reconstructions since 1900. <i>Clim. Past 20(1)</i>: 53-76. <a href=\"https://dx.doi.org/10.5194/cp-20-53-2024\" target=\"_blank\">https://dx.doi.org/10.5194/cp-20-53-2024</a>","StandardTitle":"A comparison of South Pacific Antarctic sea ice and atmospheric circulation reconstructions since 1900","AuthorsString":"Fogt, R.L.; Dalaiden, Q.; O'Connor, G.K.","BibLvlCode":"AS"},{"BRefID":345167,"RR":"<b>Paul, A.; Mulitza, S.; Stein, R.; Werner, M.</b> (2021). A global climatology of the ocean surface during the Last Glacial Maximum mapped on a regular grid (GLOMAP). <i>Clim. Past 17(2)</i>: 805-824. <a href=\"https://dx.doi.org/10.5194/cp-17-805-2021\" target=\"_blank\">https://dx.doi.org/10.5194/cp-17-805-2021</a>","StandardTitle":"A global climatology of the ocean surface during the Last Glacial Maximum mapped on a regular grid (GLOMAP)","AuthorsString":"Paul, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":303737,"RR":"<b>de Bar, M.W.; Stolwijk, D.J.; McManus, J.F.; Sinninghe Damsté, J.S.; Schouten, S.</b> (2018). A Late Quaternary climate record based on long-chain diol proxies from the Chilean margin. <i>Clim. Past 14(11)</i>: 1783-1803. <a href=\"https://doi.org/10.5194/cp-14-1783-2018\" target=\"_blank\">https://doi.org/10.5194/cp-14-1783-2018</a>","StandardTitle":"A Late Quaternary climate record based on long-chain diol proxies from the Chilean margin","AuthorsString":"de Bar, M.W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230903,"RR":"<b>Lohmann, G.; Pfeiffer, M.; Laepple, T.; Leduc, G.; Kim, J.-H.</b> (2013). A model-data comparison of the Holocene global sea surface temperature evolution. <i>Clim. Past 9(4)</i>: 1807-1839. <a href=\"http://dx.doi.org/10.5194/cp-9-1807-2013\" target=\"_blank\">dx.doi.org/10.5194/cp-9-1807-2013</a>","StandardTitle":"A model-data comparison of the Holocene global sea surface temperature evolution","AuthorsString":"Lohmann, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295968,"RR":"<b>Lunt, D.J.; Abe-Ouchi, A.; Bakker, P.; Berger, A.; Braconnot, P.; Charbit, S.; Fischer, N.; Herold, N.; Jungclaus, J.H.; Khon, V.C.; Krebs-Kanzow, U.; Langebroek, P.M.; Lohmann, G.; Nisancioglu, K.H.; Otto-Bliesner, B.L.; Park, W.; Pfeiffer, M.; Phipps, S.J.; Prange, M.; Rachmayani, R.; Renssen, H.; Rosenbloom, N.; Schneider, B.; Stone, E.J.; Takahashi, K.; Wei, W.; Yin, Q.; Zhang, Z.S.</b> (2013). A multi-model assessment of last interglacial temperatures. <i>Clim. Past 9(2)</i>: 699-717. <a href=\"https://dx.doi.org/10.5194/cp-9-699-2013\" target=\"_blank\">https://dx.doi.org/10.5194/cp-9-699-2013</a>","StandardTitle":"A multi-model assessment of last interglacial temperatures","AuthorsString":"Lunt, D.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":323605,"RR":"<b>Dearing Crampton-Flood, E.; Noorbergen, L.J.; Smits, D.; Boschman, R.C.; Donders, T.H.; Munsterman, D.K.; ten Veen, J.H.; Peterse, F.; Lourens, L.; Sinninghe Damsté, J.S</b> (2020). A new age model for the Pliocene of the southern North Sea basin: a multi-proxy climate reconstruction. <i>Clim. Past 16(2)</i>: 523-541. <a href=\"https://dx.doi.org/10.5194/cp-16-523-2020\" target=\"_blank\">https://dx.doi.org/10.5194/cp-16-523-2020</a>","StandardTitle":"A new age model for the Pliocene of the southern North Sea basin: a multi-proxy climate reconstruction","AuthorsString":"Dearing Crampton-Flood, E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":409158,"RR":"<b>Pfeiffer, M.; Takayanagi, H.; Reuning, L.; Watanabe, T.K.; Ito, S.; Garbe-Schönberg, D.; Watanabe, T.; Wu, C.-C.; Shen, C.-C.; Zinke, J.; Brummer, G.-J. A.; Cahyarini, S.Y.</b> (2025). A sub-fossil coral Sr∕Ca record documents northward shifts of the Tropical Convergence Zone in the eastern Indian Ocean. <i>Clim. Past 21(1)</i>: 211-237. <a href=\"https://dx.doi.org/10.5194/cp-21-211-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-211-2025</a>","StandardTitle":"A sub-fossil coral Sr∕Ca record documents northward shifts of the Tropical Convergence Zone in the eastern Indian Ocean","AuthorsString":"Pfeiffer, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":359670,"RR":"<b>Hennekam, R.; Grant, K.M.; Rohling, E.J.; Tjallingii, R.; Heslop, D.; Roberts, A.P.; Lourens, L.J.; Reichart, G.-J.</b> (2022). Accurately calibrated X-ray fluorescence core scanning (XRF-CS) record of Ti ∕ Al reveals Early Pleistocene aridity and humidity variability over North Africa and its close relationship to low-latitude insolation. <i>Clim. Past 18(11)</i>: 2509-2521. <a href=\"https://dx.doi.org/10.5194/cp-18-2509-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-2509-2022</a>","StandardTitle":"Accurately calibrated X-ray fluorescence core scanning (XRF-CS) record of Ti ∕ Al reveals Early Pleistocene aridity and humidity variability over North Africa and its close relationship to low-latitude insolation","AuthorsString":"Hennekam, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":307966,"RR":"<b>de Winter, N.J.; Vellekoop, J.; Vorsselmans, R.; Golreihan, A.; Soete, J.; Petersen, S.V.; Meyer, K.W.; Casadio, S.; Speijer, R.P.; Claeys, P.</b> (2018). An assessment of latest Cretaceous <i>Pycnodonte vesicularis</i> (Lamarck, 1806) shells as records for palaeoseasonality: a multi-proxy investigation. <i>Clim. Past 14(6)</i>: 725-749. <a href=\"https://dx.doi.org/10.5194/cp-14-725-2018\" target=\"_blank\">https://dx.doi.org/10.5194/cp-14-725-2018</a>","StandardTitle":"An assessment of latest Cretaceous <i>Pycnodonte vesicularis</i> (Lamarck, 1806) shells as records for palaeoseasonality: a multi-proxy investigation","AuthorsString":"de Winter, N.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295964,"RR":"<b>Dubinkina, S.; Goosse, H.</b> (2013). An assessment of particle filtering methods and nudging for climate state reconstructions. <i>Clim. Past 9(3)</i>: 1141-1152. <a href=\"https://dx.doi.org/10.5194/cp-9-1141-2013\" target=\"_blank\">https://dx.doi.org/10.5194/cp-9-1141-2013</a>","StandardTitle":"An assessment of particle filtering methods and nudging for climate state reconstructions","AuthorsString":"Dubinkina, S.; Goosse, H.","BibLvlCode":"AS"},{"BRefID":231143,"RR":"<b>Zumaque, J.; Eynaud, F.; Zaragosi, S.; Marret, F.; Matsuzaki, K.M.; Kissel, C.; Roche, D.M.; Malaize, B.; Michel, E.; Billy, I.; Richter, T.; Palis, E.</b> (2012). An ocean-ice coupled response during the last glacial: a view from a marine isotopic stage 3 record south of the Faeroe Shetland Gateway. <i>Clim. Past 8(6)</i>: 1997-2017. <a href=\"http://dx.doi.org/10.5194/cp-8-1997-2012\" target=\"_blank\">dx.doi.org/10.5194/cp-8-1997-2012</a>","StandardTitle":"An ocean-ice coupled response during the last glacial: a view from a marine isotopic stage 3 record south of the Faeroe Shetland Gateway","AuthorsString":"Zumaque, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311777,"RR":"<b>Bazin, L.; Landais, A.; Lemieux-Dudon, B.; Kele, H.T.M.; Veres, D.; Parrenin, F.; Martinerie, P.; Ritz, C.; Capron, E.; Lipenkov, V.; Loutre, M.-F.; Raynaud, D.; Vinther, B.; Svensson, A.; Rasmussen, S.O.; Severi, M.; Blünier, T.; Leuenberger, M.; Fischer, H.; Masson-Delmotte, V.; Chappellaz, J.; Wolff, E.</b> (2013). An optimized multi-proxy, multi-site Antarctic ice and gas orbital chronology (AICC2012): 120-800 ka. <i>Clim. Past 9(4)</i>: 1715-1731. <a href=\"https://dx.doi.org/10.5194/cp-9-1715-2013\" target=\"_blank\">https://dx.doi.org/10.5194/cp-9-1715-2013</a>","StandardTitle":"An optimized multi-proxy, multi-site Antarctic ice and gas orbital chronology (AICC2012): 120-800 ka","AuthorsString":"Bazin, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417676,"RR":"<b>Blasco, J.; Tabone, I.; Moreno-Parada, D.; Robinson, A.; Alvarez-Solas, J.; Pattyn, F.; Montoya, M.</b> (2024). Antarctic tipping points triggered by the mid-Pliocene warm climate. <i>Clim. Past 20(9)</i>: 1919-1938. <a href=\"https://dx.doi.org/10.5194/cp-20-1919-2024\" target=\"_blank\">https://dx.doi.org/10.5194/cp-20-1919-2024</a>","StandardTitle":"Antarctic tipping points triggered by the mid-Pliocene warm climate","AuthorsString":"Blasco, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":368689,"RR":"<b>Rush, W.; Self-Trail, J.M.; Zhang, Y.; Sluijs, A.; Brinkhuis, H.; Zachos, J.C.; Ogg, J.G.; Robinson, M.M.</b> (2023). Assessing environmental change associated with early Eocene hyperthermals in the Atlantic Coastal Plain, USA. <i>Clim. Past 19(8)</i>: 1677-1698. <a href=\"https://dx.doi.org/10.5194/cp-19-1677-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-1677-2023</a>","StandardTitle":"Assessing environmental change associated with early Eocene hyperthermals in the Atlantic Coastal Plain, USA","AuthorsString":"Rush, W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":418022,"RR":"<b>Wichern, N.M.A.; Bialik, O.M.; Nohl, T.; Percival, L.M.E.; Becker, R.T.; Kaskes, P.; Claeys, P.; De Vleeschouwer, D.</b> (2024). Astronomically paced climate and carbon cycle feedbacks in the lead-up to the Late Devonian Kellwasser Crisis. <i>Clim. Past 20(2)</i>: 415-448. <a href=\"https://dx.doi.org/10.5194/cp-20-415-2024\" target=\"_blank\">https://dx.doi.org/10.5194/cp-20-415-2024</a>","StandardTitle":"Astronomically paced climate and carbon cycle feedbacks in the lead-up to the Late Devonian Kellwasser Crisis","AuthorsString":"Wichern, N.M.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231166,"RR":"<b>Niemann, H.; Stadnitskaia, A.; Wirth, S.B.; Gilli, A.; Anselmetti, F.S.; Sinninghe Damsté, J.S.S.; Schouten, S.; Hopmans, E.C.; Lehmann, M.F.</b> (2012). Bacterial GDGTs in Holocene sediments and catchment soils of a high Alpine lake: application of the MBT/CBT-paleothermometer. <i>Clim. Past 8(3)</i>: 889-906. <a href=\"http://dx.doi.org/10.5194/cp-8-889-2012\" target=\"_blank\">dx.doi.org/10.5194/cp-8-889-2012</a>","StandardTitle":"Bacterial GDGTs in Holocene sediments and catchment soils of a high Alpine lake: application of the MBT/CBT-paleothermometer","AuthorsString":"Niemann, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337405,"RR":"<b>Goosse, H.; Dalaiden, Q.; Cavitte, M.G.P.; Zhang, L.</b> (2021). Can we reconstruct the formation of large open-ocean polynyas in the Southern Ocean using ice core records? <i>Clim. Past 17(1)</i>: 111-131. <a href=\"https://hdl.handle.net/10.5194/cp-17-111-2021\" target=\"_blank\">https://hdl.handle.net/10.5194/cp-17-111-2021</a>","StandardTitle":"Can we reconstruct the formation of large open-ocean polynyas in the Southern Ocean using ice core records?","AuthorsString":"Goosse, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":245314,"RR":"<b>Bottini, C.; Erba, E.; Tiraboschi, D.; Jenkyns, H.C.; Schouten, S.; Sinninghe Damsté, J.S.</b> (2015). Climate variability and ocean fertility during the Aptian Stage. <i>Clim. Past 11</i>: 383-402. <a href=\"http://dx.doi.org/10.5194/cp-11-383-2015\" target=\"_blank\">dx.doi.org/10.5194/cp-11-383-2015</a>","StandardTitle":"Climate variability and ocean fertility during the Aptian Stage","AuthorsString":"Bottini, C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":361720,"RR":"<b>O'Hora, H.E.; Petersen, S.V.; Vellekoop, J.; Jones, M.M.; Scholz, S.R.</b> (2022). Clumped-isotope-derived climate trends leading up to the end-Cretaceous mass extinction in northwestern Europe. <i>Clim. Past 18(9)</i>: 1963-1982. <a href=\"https://dx.doi.org/10.5194/cp-18-1963-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-1963-2022</a>","StandardTitle":"Clumped-isotope-derived climate trends leading up to the end-Cretaceous mass extinction in northwestern Europe","AuthorsString":"O'Hora, H.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":350120,"RR":"<b>Weiss, G.M.; Lattaud, J.; van der Meer, M.T.J.; Eglinton, T.I.</b> (2022). Co-evolution of the terrestrial and aquatic ecosystem in the Holocene Baltic Sea. <i>Clim. Past 18(2)</i>: 233-248. <a href=\"https://dx.doi.org/10.5194/cp-18-233-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-233-2022</a>","StandardTitle":"Co-evolution of the terrestrial and aquatic ecosystem in the Holocene Baltic Sea","AuthorsString":"Weiss, G.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":437483,"RR":"<b>Karancz, S.; de Nooijer, L.J.; van der Wagt, B.; van der Meer, M.T.J.; Misra, S.; Hennekam, R.; Erdem, Z.; Lattaud, J.; Haghipour, N.; Schouten, S.; Reichart, G.-J.</b> (2025). Contrasts in the marine inorganic carbon chemistry of the Benguela Upwelling System since the Last Glacial Maximum. <i>Clim. Past 21(3)</i>: 679-704. <a href=\"https://dx.doi.org/10.5194/cp-21-679-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-679-2025</a>","StandardTitle":"Contrasts in the marine inorganic carbon chemistry of the Benguela Upwelling System since the Last Glacial Maximum","AuthorsString":"Karancz, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":367662,"RR":"<b>Bouttes, N.; Lhardy, F.; Quiquet, A.; Paillard, D.; Goosse, H.; Roche, D.M.</b> (2023). Deglacial climate changes as forced by  different ice sheet reconstructions. <i>Clim. Past 19(5)</i>: 1027-1042. <a href=\"https://dx.doi.org/10.5194/cp-19-1027-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-1027-2023</a>","StandardTitle":"Deglacial climate changes as forced by  different ice sheet reconstructions","AuthorsString":"Bouttes, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417318,"RR":"<b>Mikolajewicz, U.; Kapsch, M.L.; Schannwell, C.; Six, K.D.; Ziemen, F.A.; Bagge, M.; Baudouin, J.P.; Erokhina, O.; Gayler, V.; Klemann, V.; Meccia, V.L.; Mouchet, A.; Riddick, T.</b> (2025). Deglaciation and abrupt events in a coupled comprehensive atmosphere-ocean-ice-sheet-solid-earth model. <i>Clim. Past 21(3)</i>: 719-751. <a href=\"https://dx.doi.org/10.5194/cp-21-719-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-719-2025</a>","StandardTitle":"Deglaciation and abrupt events in a coupled comprehensive atmosphere-ocean-ice-sheet-solid-earth model","AuthorsString":"Mikolajewicz, U. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":338477,"RR":"<b>Blanchet, C.L.; Tjallingii, R.; Schleicher, A.M.; Schouten, S.; Frank, M.; Brauer, A.</b> (2021). Deoxygenation dynamics on the western Nile deep-sea fan during sapropel S1 from seasonal to millennial timescales. <i>Clim. Past 17(3)</i>: 1025-1050. <a href=\"https://doi.org/10.5194/cp-17-1025-2021\" target=\"_blank\">https://doi.org/10.5194/cp-17-1025-2021</a>","StandardTitle":"Deoxygenation dynamics on the western Nile deep-sea fan during sapropel S1 from seasonal to millennial timescales","AuthorsString":"Blanchet, C.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":331262,"RR":"<b>Plach, A.; Nisancioglu, K.H.; Le Clec'h, S.; Born, A.; Langebroek, P.M.; Guo, C.; Imhof, M.; Stocker, T.F.</b> (2018). Eemian Greenland SMB strongly sensitive to model choice. <i>Clim. Past 14(10)</i>: 1463-1485. <a href=\"https://dx.doi.org/10.5194/cp-14-1463-2018\" target=\"_blank\">https://dx.doi.org/10.5194/cp-14-1463-2018</a>","StandardTitle":"Eemian Greenland SMB strongly sensitive to model choice","AuthorsString":"Plach, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296093,"RR":"<b>Henrot, A.-J.; François, L.; Favre, E.; Butzin, M.; Ouberdous, M.; Munhoven, G.</b> (2010). Effects of CO<sub>2</sub>, continental distribution, topography and vegetation changes on the climate at the Middle Miocene: a model study. <i>Clim. Past 6(5)</i>: 675-694. <a href=\"https://dx.doi.org/10.5194/cp-6-675-2010\" target=\"_blank\">https://dx.doi.org/10.5194/cp-6-675-2010</a>","StandardTitle":"Effects of CO<sub>2</sub>, continental distribution, topography and vegetation changes on the climate at the Middle Miocene: a model study","AuthorsString":"Henrot, A.-J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":334316,"RR":"<b>Leupold, M.; Pfeiffer, M.; Watanabe, T.K.; Reuning, L.; Garbe-Schönberg, D.; Shen, C.-C.; Brummer, G.-J. A.</b> (2021). El Niño–Southern Oscillation and internal sea surface  temperature variability in the tropical Indian Ocean since 1675. <i>Clim. Past 17(1)</i>: 151-170. <a href=\"https://doi.org/10.5194/cp-17-151-2021\" target=\"_blank\">https://doi.org/10.5194/cp-17-151-2021</a>","StandardTitle":"El Niño–Southern Oscillation and internal sea surface  temperature variability in the tropical Indian Ocean since 1675","AuthorsString":"Leupold, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353198,"RR":"<b>Crockart, C.K.; Vance, T.R.; Fraser, A.D.; Abram, N.J.; Criscitiello, A.S.; Curran, M.A.J.; Favier, V.; Gallant, A.J.E.; Kittel, C.; Kjaer, H.A.; Klekociuk, A.R.; Jong, L.M.; Moy, A.D.; Plummer, C.T.; Vallelonga, P.T.; Wille, J.; Zhang, L.</b> (2021). El Niño–Southern Oscillation signal in a new East Antarctic ice core, Mount Brown South. <i>Clim. Past 17(5)</i>: 1795-1818. <a href=\"https://dx.doi.org/10.5194/cp-17-1795-2021\" target=\"_blank\">https://dx.doi.org/10.5194/cp-17-1795-2021</a>","StandardTitle":"El Niño–Southern Oscillation signal in a new East Antarctic ice core, Mount Brown South","AuthorsString":"Crockart, C.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295551,"RR":"<b>Lord, N.S.; Crucifix, M.; Lunt, D.J.; Thorne, M.C.; Bounceur, N.; Dowsett, H.; O'Brien, C.L.; Ridgwell, A.</b> (2017). Emulation of long-term changes in global climate: application to the late Pliocene and future. <i>Clim. Past 13(11)</i>: 1539-1571. <a href=\"https://dx.doi.org/10.5194/cp-13-1539-2017\" target=\"_blank\">https://dx.doi.org/10.5194/cp-13-1539-2017</a>","StandardTitle":"Emulation of long-term changes in global climate: application to the late Pliocene and future","AuthorsString":"Lord, N.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296052,"RR":"<b>Loutre, M.-F.; Mouchet, A.; Fichefet, T.; Goosse, H.; Goelzer, H.; Huybrechts, P.</b> (2011). Evaluating climate model performance with various parameter sets using observations over the recent past. <i>Clim. Past 7(2)</i>: 511-526. <a href=\"https://dx.doi.org/10.5194/cp-7-511-2011\" target=\"_blank\">https://dx.doi.org/10.5194/cp-7-511-2011</a>","StandardTitle":"Evaluating climate model performance with various parameter sets using observations over the recent past","AuthorsString":"Loutre, M.-F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":332281,"RR":"<b>Dämmer, L.K.; de Nooijer, L.; van Sebille, E.; Haak, J.G.; Reichart, G.-J.</b> (2020). Evaluation of oxygen isotopes and trace elements in planktonic foraminifera from the Mediterranean Sea as recorders of seawater oxygen isotopes and salinity. <i>Clim. Past 16(6)</i>: 2401-2414. <a href=\"https://doi.org/10.5194/cp-16-2401-2020\" target=\"_blank\">https://doi.org/10.5194/cp-16-2401-2020</a>","StandardTitle":"Evaluation of oxygen isotopes and trace elements in planktonic foraminifera from the Mediterranean Sea as recorders of seawater oxygen isotopes and salinity","AuthorsString":"Dämmer, L.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":356428,"RR":"<b>Sinninghe Damsté, J.S.; Warden, L.A.; Berg, C.; Jürgens, K.; Moros, M.</b> (2022). Evaluation of the distributions of hydroxylated  glycerol dibiphytanyl glycerol tetraethers (GDGTs) in Holocene Baltic Sea sediments for reconstruction of sea surface temperature: the effect of changing salinity. <i>Clim. Past 18(10)</i>: 2271-2288. <a href=\"https://dx.doi.org/10.5194/cp-18-2271-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-2271-2022</a>","StandardTitle":"Evaluation of the distributions of hydroxylated  glycerol dibiphytanyl glycerol tetraethers (GDGTs) in Holocene Baltic Sea sediments for reconstruction of sea surface temperature: the effect of changing salinity","AuthorsString":"Sinninghe Damsté, J.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":313014,"RR":"<b>Fletcher, T.L.; Warden, L.; Sinninghe Damsté, J.S.; Brown, K.J.; Rybczynski, N.; Gosse, J.C.; Ballantyne, A.P.</b> (2019). Evidence for fire in the Pliocene Arctic in response to amplified temperature. <i>Clim. Past 15(3)</i>: 1063-1081. <a href=\"https://dx.doi.org/10.5194/cp-15-1063-2019\" target=\"_blank\">https://dx.doi.org/10.5194/cp-15-1063-2019</a>","StandardTitle":"Evidence for fire in the Pliocene Arctic in response to amplified temperature","AuthorsString":"Fletcher, T.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":393306,"RR":"<b>Meyer, V.D.; Pätzold, J.; Mollenhauer, G.; Castañeda, I.S; Schouten, S.; Schefuß, E.</b> (2024). Evolution of winter precipitation in the Nile river watershed since the last glacial. <i>Clim. Past 20(3)</i>: 523-546. <a href=\"https://dx.doi.org/10.5194/cp-20-523-2024\" target=\"_blank\">https://dx.doi.org/10.5194/cp-20-523-2024</a>","StandardTitle":"Evolution of winter precipitation in the Nile river watershed since the last glacial","AuthorsString":"Meyer, V.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417435,"RR":"<b>Gérard, J.; Sablon, L.; Huygh, J.J.C.; Da Silva, A.C.; Pohl, A.; Vérard, C.; Crucifix, M.</b> (2025). Exploring the mechanisms of Devonian oceanic anoxia: impact of ocean dynamics, palaeogeography, and orbital forcing. <i>Clim. Past 21(1)</i>: 239-260. <a href=\"https://dx.doi.org/10.5194/cp-21-239-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-239-2025</a>","StandardTitle":"Exploring the mechanisms of Devonian oceanic anoxia: impact of ocean dynamics, palaeogeography, and orbital forcing","AuthorsString":"Gérard, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295914,"RR":"<b>Loutre, M.-F.; Fichefet, T.; Goosse, H.; Huybrechts, P.; Goelzer, H.; Capron, E.</b> (2014). Factors controlling the last interglacial climate as simulated by LOVECLIM1.3. <i>Clim. Past 10(4)</i>: 1541-1565. <a href=\"https://dx.doi.org/10.5194/cp-10-1541-2014\" target=\"_blank\">https://dx.doi.org/10.5194/cp-10-1541-2014</a>","StandardTitle":"Factors controlling the last interglacial climate as simulated by LOVECLIM1.3","AuthorsString":"Loutre, M.-F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":246500,"RR":"<b>van Helmond, N.A.G.M.; Sluijs, A.; Sinninghe Damsté, J.S.; Reichart, G.-J.; Voigt, S.; Erbacher, J.; Pross, J.; Brinkhuis, H.</b> (2015). Freshwater discharge controlled deposition of Cenomanian–Turonian black shales on the NW European epicontinental shelf (Wunstorf, northern Germany). <i>Clim. Past 11</i>: 495-508. <a href=\"http://dx.doi.org/10.5194/cp-11-495-2015\" target=\"_blank\">dx.doi.org/10.5194/cp-11-495-2015</a>","StandardTitle":"Freshwater discharge controlled deposition of Cenomanian–Turonian black shales on the NW European epicontinental shelf (Wunstorf, northern Germany)","AuthorsString":"van Helmond, N.A.G.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296014,"RR":"<b>Brovkin, V.; Ganopolski, A.; Archer, D.; Munhoven, G.</b> (2012). Glacial CO<sub>2</sub> cycle as a succession of key physical and biogeochemical processes. <i>Clim. Past 8(1)</i>: 251-264. <a href=\"https://dx.doi.org/10.5194/cp-8-251-2012\" target=\"_blank\">https://dx.doi.org/10.5194/cp-8-251-2012</a>","StandardTitle":"Glacial CO<sub>2</sub> cycle as a succession of key physical and biogeochemical processes","AuthorsString":"Brovkin, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231394,"RR":"<b>Dupont, L.M.; Caley, T.; Kim, J.H.; Castañeda, I.S; Malaize, B.; Giraudeau, J.</b> (2011). Glacial-interglacial vegetation dynamics in South Eastern Africa coupled to sea surface temperature variations in the Western Indian Ocean. <i>Clim. Past 7(4)</i>: 1209-1224. <a href=\"http://dx.doi.org/10.5194/cp-7-1209-2011\" target=\"_blank\">dx.doi.org/10.5194/cp-7-1209-2011</a>","StandardTitle":"Glacial-interglacial vegetation dynamics in South Eastern Africa coupled to sea surface temperature variations in the Western Indian Ocean","AuthorsString":"Dupont, L.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":380778,"RR":"<b>Hättig, K.; Varma, D.; Schouten, S.; van der Meer, M.T.J.</b> (2023). Glacial–interglacial seawater isotope change near the Chilean Margin as reflected by <i>δ</i><sup>2</sup>H values of C<sub>37</sub> alkenones. <i>Clim. Past 19(10)</i>: 1919-1930. <a href=\"https://dx.doi.org/10.5194/cp-19-1919-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-1919-2023</a>","StandardTitle":"Glacial–interglacial seawater isotope change near the Chilean Margin as reflected by <i>δ</i><sup>2</sup>H values of C<sub>37</sub> alkenones","AuthorsString":"Hättig, K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231395,"RR":"<b>Caley, T.; Kim, J.H.; Malaize, B.; Giraudeau, J.; Laepple, T.; Caillon, N.; Charlier, K.; Rebaubier, H.; Rossignol, L.; Castañeda, I.S; Schouten, S.; Sinninghe Damsté, J.S.</b> (2011). High-latitude obliquity as a dominant forcing in the Agulhas current system. <i>Clim. Past 7(4)</i>: 1285-1296. <a href=\"http://dx.doi.org/10.5194/cp-7-1285-2011\" target=\"_blank\">dx.doi.org/10.5194/cp-7-1285-2011</a>","StandardTitle":"High-latitude obliquity as a dominant forcing in the Agulhas current system","AuthorsString":"Caley, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":240866,"RR":"<b>Weldeab, S.; Stuut, J.-B.W.; Schneider, R.R.; Siebel, W.</b> (2013). Holocene climate variability in the winter rainfall zone of South Africa. <i>Clim. Past 9</i>: 2347-2364. <a href=\"http://dx.doi.org/10.5194/cp-9-2347-2013\" target=\"_blank\">http://dx.doi.org/10.5194/cp-9-2347-2013</a>","StandardTitle":"Holocene climate variability in the winter rainfall zone of South Africa","AuthorsString":"Weldeab, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230902,"RR":"<b>Etourneau, J.; Collins, L.G.; Willmott, V.; Barbara, L.; Leventer, A.; Schouten, S.; Sinninghe Damsté, J.S.; Bianchini, A.; Klein, V.; Crosta, X.; Massé, G.</b> (2013). Holocene climate variations in the western Antarctic Peninsula: evidence for sea ice extent predominantly controlled by changes in insolation and ENSO variability. <i>Clim. Past 9(4)</i>: 1431-1446. <a href=\"http://dx.doi.org/10.5194/cp-9-1431-2013\" target=\"_blank\">dx.doi.org/10.5194/cp-9-1431-2013</a>","StandardTitle":"Holocene climate variations in the western Antarctic Peninsula: evidence for sea ice extent predominantly controlled by changes in insolation and ENSO variability","AuthorsString":"Etourneau, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":340351,"RR":"<b>Strobel, P.; Bliedtner, M.; Carr, A.S.; Frenzel, P.; Klaes, B.; Salazar, G.; Struck, J.; Szidat, S.; Zech, R.; Haberzettl, T.</b> (2021). Holocene sea level and environmental change at the southern Cape – an 8.5 kyr multi-proxy paleoclimate record from Lake Voëlvlei, South Africa. <i>Clim. Past 17(4)</i>: 1567-1586. <a href=\"https://dx.doi.org/10.5194/cp-17-1567-2021\" target=\"_blank\">https://dx.doi.org/10.5194/cp-17-1567-2021</a>","StandardTitle":"Holocene sea level and environmental change at the southern Cape – an 8.5 kyr multi-proxy paleoclimate record from Lake Voëlvlei, South Africa","AuthorsString":"Strobel, P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391425,"RR":"<b>Van Breedam, J.; Huybrechts, P.; Crucifix, M.</b> (2023). Hysteresis and orbital pacing of the early Cenozoic Antarctic ice sheet. <i>Clim. Past 19(12)</i>: 2551-2568. <a href=\"https://dx.doi.org/10.5194/cp-19-2551-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-2551-2023</a>","StandardTitle":"Hysteresis and orbital pacing of the early Cenozoic Antarctic ice sheet","AuthorsString":"Van Breedam, J.; Huybrechts, P.; Crucifix, M.","BibLvlCode":"AS"},{"BRefID":436729,"RR":"<b>Cutmore, A.; Bale, N.; Hennekam, R.; Yang, B.; Rush, D.; Reichart, G.-J.; Hopmans, E.C.; Schouten, S.</b> (2025). Impact of deoxygenation and hydrological changes on the Black Sea nitrogen cycle during the Last Deglaciation and Holocene. <i>Clim. Past 21(6)</i>: 957-971. <a href=\"https://dx.doi.org/10.5194/cp-21-957-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-957-2025</a>","StandardTitle":"Impact of deoxygenation and hydrological changes on the Black Sea nitrogen cycle during the Last Deglaciation and Holocene","AuthorsString":"Cutmore, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":297174,"RR":"<b>Goelzer, H.; Huybrechts, P.; Loutre, M.-F.; Fichefet, T.</b> (2016). Impact of ice sheet meltwater fluxes on the climate evolution at the onset of the Last Interglacial. <i>Clim. Past 12(8)</i>: 1721-1737. <a href=\"https://dx.doi.org/10.5194/cp-12-1721-2016\" target=\"_blank\">https://dx.doi.org/10.5194/cp-12-1721-2016</a>","StandardTitle":"Impact of ice sheet meltwater fluxes on the climate evolution at the onset of the Last Interglacial","AuthorsString":"Goelzer, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257956,"RR":"<b>Yin, Q.Z.; Berger, A.; Crucifix, M.</b> (2009). Individual and combined effects of ice sheets and precession on MIS-13 climate. <i>Clim. Past 5(2)</i>: 229-243. <a href=\"http://dx.doi.org/10.5194/cp-5-229-2009\" target=\"_blank\">http://dx.doi.org/10.5194/cp-5-229-2009</a>","StandardTitle":"Individual and combined effects of ice sheets and precession on MIS-13 climate","AuthorsString":"Yin, Q.Z. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":258129,"RR":"<b>Buckles, L.K.; Verschuren, D.; Weijers, J.W.H.; Cocquyt, C.; Blaauw, M.; Sinninghe Damsté, J.S.</b> (2016). Interannual and (multi-)decadal variability in the sedimentary BIT index of Lake Challa, East Africa, over the past 2200 years: assessment of the precipitation proxy. <i>Clim. Past 12</i>: 1243-1262. <a href=\"http://dx.doi.org/10.5194/cp-12-1243-2016\" target=\"_blank\">dx.doi.org/10.5194/cp-12-1243-2016</a>","StandardTitle":"Interannual and (multi-)decadal variability in the sedimentary BIT index of Lake Challa, East Africa, over the past 2200 years: assessment of the precipitation proxy","AuthorsString":"Buckles, L.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":321326,"RR":"<b>Bowen, G.J.; Fischer-Femal, B.; Reichart, G.-J.; Sluijs, A.; Lear, C.H.</b> (2020). Joint inversion of proxy system models to reconstruct paleoenvironmental time series from heterogeneous data. <i>Clim. Past 16</i>: 65-78. <a href=\"https://dx.doi.org/10.5194/cp-16-65-2020\" target=\"_blank\">https://dx.doi.org/10.5194/cp-16-65-2020</a>","StandardTitle":"Joint inversion of proxy system models to reconstruct paleoenvironmental time series from heterogeneous data","AuthorsString":"Bowen, G.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":294250,"RR":"<b>Donders, T.H.; van Helmond, N.A.G.M.; Verreussel, R.; Munsterman, D.; ten Veen, J.; Speijer, R.P.; Weijers, J.W.H.; Sangiorgi, F.; Peterse, F.; Reichart, G.-J.; Sinninghe Damsté, J.S.; Lourens, L.; Kuhlmann, G.; Brinkhuis, H.</b> (2018). Land–sea coupling of early Pleistocene glacial cycles  in the southern North Sea exhibit dominant Northern Hemisphere forcing. <i>Clim. Past 14(3)</i>: 397-411. <a href=\"https://doi.org/10.5194/cp-14-397-2018\" target=\"_blank\">https://doi.org/10.5194/cp-14-397-2018</a>","StandardTitle":"Land–sea coupling of early Pleistocene glacial cycles  in the southern North Sea exhibit dominant Northern Hemisphere forcing","AuthorsString":"Donders, T.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285348,"RR":"<b>Goelzer, H.; Huybrechts, P.; Loutre, M.-F.; Fichefet, T.</b> (2016). Last Interglacial climate and sea-level evolution from a coupled ice sheet-climate model. <i>Clim. Past 12(12)</i>: 2195-2213. <a href=\"https://dx.doi.org/10.5194/cp-12-2195-2016\" target=\"_blank\">https://dx.doi.org/10.5194/cp-12-2195-2016</a>","StandardTitle":"Last Interglacial climate and sea-level evolution from a coupled ice sheet-climate model","AuthorsString":"Goelzer, H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":331460,"RR":"<b>Bender, M.; Mann, T.; Stocchi, P.; Kneer, D.; Schöne, T.; Illigner, J.; Jompa, J.; Rovere, A.</b> (2020). Late Holocene (0–6 ka) sea-level changes in the Makassar Strait, Indonesia. <i>Clim. Past 16</i>: 1187–1205. <a href=\"https://doi.org/10.5194/cp-16-1187-2020\" target=\"_blank\">https://doi.org/10.5194/cp-16-1187-2020</a>","StandardTitle":"Late Holocene (0–6 ka) sea-level changes in the Makassar Strait, Indonesia","AuthorsString":"Bender, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":332327,"RR":"<b>Sluijs, A.; Frieling, J.; Inglis, G.N.; Nierop, K.G.J.; Peterse, F; Sangiorgi, F.; Schouten, S.</b> (2020). Late Paleocene–early Eocene Arctic Ocean sea surface temperatures: reassessing biomarker paleothermometry at Lomonosov Ridge. <i>Clim. Past 16(6)</i>: 2381-2400. <a href=\"https://doi.org/10.5194/cp-16-2381-2020\" target=\"_blank\">https://doi.org/10.5194/cp-16-2381-2020</a>","StandardTitle":"Late Paleocene–early Eocene Arctic Ocean sea surface temperatures: reassessing biomarker paleothermometry at Lomonosov Ridge","AuthorsString":"Sluijs, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295550,"RR":"<b>Schobben, M.; van de Velde, S.; Gliwa, J.; Leda, L.; Korn, D.; Struck, U.; Ullmann, C.V.; Hairapetian, V.; Ghaderi, A.; Korte, C.; Newton, R.J.; Poulton, S.W.; Wignall, P.B.</b> (2017). Latest Permian carbonate carbon isotope variability traces heterogeneous organic carbon accumulation and authigenic carbonate formation. <i>Clim. Past 13(11)</i>: 1635-1659. <a href=\"https://dx.doi.org/10.5194/cp-13-1635-2017\" target=\"_blank\">https://dx.doi.org/10.5194/cp-13-1635-2017</a>","StandardTitle":"Latest Permian carbonate carbon isotope variability traces heterogeneous organic carbon accumulation and authigenic carbonate formation","AuthorsString":"Schobben, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337607,"RR":"<b>Smith, V.; Warny, S.; Grice, K.; Schaefer, B.; Whalen, M.T.; Vellekoop, J.; Chenot, E.; Gulick, S.P.S.; Arenillas, I.; Arz, J.A.; Bauersachs, T.; Bralower, T.; Demory, F.; Gattacceca, J.; Jones, H.; Lofi, J.; Lowery, C.M.; Morgan, J.; Nuñez Otaño, N.B.; O'Keefe, J.M.K.; O'Malley, K.; Rodriguez-Tovar, F.J.; Schwark, L.; IODP-ICDP Expedition 364 Scientists</b> (2020). Life and death in the Chicxulub impact crater: a record of the Paleocene-Eocene Thermal Maximum. <i>Clim. Past 16(5)</i>: 1889-1899. <a href=\"https://hdl.handle.net/10.5194/cp-16-1889-2020\" target=\"_blank\">https://hdl.handle.net/10.5194/cp-16-1889-2020</a>","StandardTitle":"Life and death in the Chicxulub impact crater: a record of the Paleocene-Eocene Thermal Maximum","AuthorsString":"Smith, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":438267,"RR":"<b>de Winter, N.J.; al Fudhaili, N.; Arndt, I.; Claeys, P.; Fraaije, R.; Goderis, S.; Jagt, J.; López Correa, M.; Munnecke, A.; Stolarski, J.; Ziegler, M.</b> (2025). Living on the edge: Response of Late Cretaceous rudist bivalves (Hippuritida) to hot and highly seasonal climate in the low-latitude Saiwan site, Oman. <i>Clim. Past 21(11)</i>: 2361-2387. <a href=\"https://dx.doi.org/10.5194/cp-21-2361-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-2361-2025</a>","StandardTitle":"Living on the edge: Response of Late Cretaceous rudist bivalves (Hippuritida) to hot and highly seasonal climate in the low-latitude Saiwan site, Oman","AuthorsString":"de Winter, N.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295919,"RR":"<b>de Winter, N.J.; Zeeden, C.; Hilgen, F.J.</b> (2014). Low-latitude climate variability in the Heinrich frequency band of the Late Cretaceous greenhouse world. <i>Clim. Past 10(3)</i>: 1001-1015. <a href=\"https://dx.doi.org/10.5194/cp-10-1001-2014\" target=\"_blank\">https://dx.doi.org/10.5194/cp-10-1001-2014</a>","StandardTitle":"Low-latitude climate variability in the Heinrich frequency band of the Late Cretaceous greenhouse world","AuthorsString":"de Winter, N.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230926,"RR":"<b>Grove, C.A.; Zinke, J.; Peeters, F.; Park, W.; Scheufen, T.; Kasper, S.; Randriamanantsoa, B.; McCulloch, M.T.; Brummer, G.J.A.</b> (2013). Madagascar corals reveal a multidecadal signature of rainfall and river runoff since 1708. <i>Clim. Past 9(2)</i>: 641-656. <a href=\"http://dx.doi.org/10.5194/cp-9-641-2013\" target=\"_blank\">dx.doi.org/10.5194/cp-9-641-2013</a>","StandardTitle":"Madagascar corals reveal a multidecadal signature of rainfall and river runoff since 1708","AuthorsString":"Grove, C.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":322083,"RR":"<b>Brummer, G.-J. A.; Metcalfe, B.; Feldmeijer, W.; Prins, M.A.; van 't Hoff, J.; Ganssen, G.M.</b> (2020). Modal shift in North Atlantic seasonality during the last deglaciation. <i>Clim. Past 16(1)</i>: 265-282. <a href=\"https://dx.doi.org/10.5194/cp-16-265-2020\" target=\"_blank\">https://dx.doi.org/10.5194/cp-16-265-2020</a>","StandardTitle":"Modal shift in North Atlantic seasonality during the last deglaciation","AuthorsString":"Brummer, G.-J. A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":247090,"RR":"<b>Klein, F.; Goosse, H.; Mairesse, A.; de Vernal, A</b> (2014). Model-data comparison and data assimilation of mid-Holocene Arctic sea ice concentration. <i>Clim. Past 10(3)</i>: 1145-1163. <a href=\"http://dx.doi.org/10.5194/cp-10-1145-2014\" target=\"_blank\">dx.doi.org/10.5194/cp-10-1145-2014</a>","StandardTitle":"Model-data comparison and data assimilation of mid-Holocene Arctic sea ice concentration","AuthorsString":"Klein, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285387,"RR":"<b>Kleinen, T.; Brovkin, V.; Munhoven, G.</b> (2016). Modelled interglacial carbon cycle dynamics during the Holocene, the Eemian and Marine Isotope Stage (MIS) 11. <i>Clim. Past 12(12)</i>: 2145-2160. <a href=\"https://dx.doi.org/10.5194/cp-12-2145-2016\" target=\"_blank\">https://dx.doi.org/10.5194/cp-12-2145-2016</a>","StandardTitle":"Modelled interglacial carbon cycle dynamics during the Holocene, the Eemian and Marine Isotope Stage (MIS) 11","AuthorsString":"Kleinen, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285428,"RR":"<b>Batenburg, S.J.; De Vleeschouwer, D.; Sprovieri, M.; Hilgen, F.J.; Gale, A.S.; Singer, B.S.; Koeberl, C.; Coccioni, R.; Claeys, P.; Montanari, A.</b> (2016). Orbital control on the timing of oceanic anoxia in the Late Cretaceous. <i>Clim. Past 12(10)</i>: 1995-2009. <a href=\"https://dx.doi.org/10.5194/cp-12-1995-2016\" target=\"_blank\">https://dx.doi.org/10.5194/cp-12-1995-2016</a>","StandardTitle":"Orbital control on the timing of oceanic anoxia in the Late Cretaceous","AuthorsString":"Batenburg, S.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":299894,"RR":"<b>Salabarnada, A.; Escutia, C.; Röhl, U.; Nelson, C.H.; McKay, R.; Jiménez-Espejo, F.J.; Bijl, P.K.; Hartman, J.D.; Strother, S.L.; Salzmann, U.; Evangelinos, D.; López-Quirós, A.; Flores, J.A.; Sangiorgi, F.; Ikehara, M.; Brinkhuis, H.</b> (2018). Paleoceanography and ice sheet variability offshore Wilkes Land, Antarctica - Part 1: Insights from late Oligocene astronomically paced contourite sedimentation. <i>Clim. Past 14(7)</i>: 991-1014. <a href=\"https://doi.org/10.5194/cp-14-991-2018\" target=\"_blank\">https://doi.org/10.5194/cp-14-991-2018</a>","StandardTitle":"Paleoceanography and ice sheet variability offshore Wilkes Land, Antarctica - Part 1: Insights from late Oligocene astronomically paced contourite sedimentation","AuthorsString":"Salabarnada, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":300781,"RR":"<b>Hartman, J.D.; Sangiorgi, F.; Salabarnada, A.; Peterse, F; Houben, A.J.P.; Schouten, S.; Brinkhuis, H.; Escutia, C.; Bijl, P.K.</b> (2018). Paleoceanography and ice sheet variability offshore Wilkes Land, Antarctica – Part 3: Insights from Oligocene–Miocene TEX<sub>86</sub>-based sea surface temperature reconstructions. <i>Clim. Past 14(9)</i>: 1275-1297. <a href=\"https://doi.org/10.5194/cp-14-1275-2018\" target=\"_blank\">https://doi.org/10.5194/cp-14-1275-2018</a>","StandardTitle":"Paleoceanography and ice sheet variability offshore Wilkes Land, Antarctica – Part 3: Insights from Oligocene–Miocene TEX<sub>86</sub>-based sea surface temperature reconstructions","AuthorsString":"Hartman, J.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285713,"RR":"<b>Vansteenberge, S.; Verheyden, S.; Cheng, H.; Edwards, R.L.; Keppens, E.; Claeys, P.</b> (2016). Paleoclimate in continental northwestern Europe during the Eemian and early Weichselian (125–97 ka): insights from a Belgian speleothem. <i>Clim. Past 12(7)</i>: 1445-1458. <a href=\"https://dx.doi.org/10.5194/cp-12-1445-2016\" target=\"_blank\">https://dx.doi.org/10.5194/cp-12-1445-2016</a>","StandardTitle":"Paleoclimate in continental northwestern Europe during the Eemian and early Weichselian (125–97 ka): insights from a Belgian speleothem","AuthorsString":"Vansteenberge, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":280906,"RR":"<b>Masson-Delmotte, V.; Dreyfus, G.; Braconnot, P.; Johnsen, S.; Jouzel, J.; Kageyama, M.; Landais, A.; Loutre, M.-F.; Nouet, J.; Parrenin, F.; Raynaud, D.; Stenni, B.; Tuenter, E.</b> (2006). Past temperature reconstructions from deep ice cores: relevance for future climate change. <i>Clim. Past 2(2)</i>: 145-165. <a href=\"http://dx.doi.org/10.5194/cp-2-145-2006\" target=\"_blank\">http://dx.doi.org/10.5194/cp-2-145-2006</a>","StandardTitle":"Past temperature reconstructions from deep ice cores: relevance for future climate change","AuthorsString":"Masson-Delmotte, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355925,"RR":"<b>De Vleeschouwer, D.; Peral, M.; Marchegiano, M.; Füllberg, A.; Meinicke, N.; Pälike, H.; Auer, G.; Petrick, B.F.; Snoeck, C.; Goderis, S.; Claeys, P.</b> (2022). Plio-Pleistocene Perth Basin water temperatures and Leeuwin Current dynamics (Indian Ocean) derived from oxygen and clumped-isotope paleothermometry. <i>Clim. Past 18(5)</i>: 1231-1253. <a href=\"https://dx.doi.org/10.5194/cp-18-1231-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-1231-2022</a>","StandardTitle":"Plio-Pleistocene Perth Basin water temperatures and Leeuwin Current dynamics (Indian Ocean) derived from oxygen and clumped-isotope paleothermometry","AuthorsString":"De Vleeschouwer, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352831,"RR":"<b>van der Weijst, C.M.H.; Winkelhorst, J.; de Nooijer, W.; von der Heydt, A.; Reichart, G.-J.; Sangiorgi, F.; Sluijs, A.</b> (2022). Pliocene evolution of the tropical Atlantic thermocline depth. <i>Clim. Past 18(4)</i>: 961-973. <a href=\"https://dx.doi.org/10.5194/cp-18-961-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-961-2022</a>","StandardTitle":"Pliocene evolution of the tropical Atlantic thermocline depth","AuthorsString":"van der Weijst, C.M.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":225837,"RR":"<b>De Vleeschouwer, D.; Da Silva, A.C.; Boulvain, F.; Crucifix, M.; Claeys, P.</b> (2012). Precessional and half-precessional climate forcing of Mid-Devonian monsoon-like dynamics. <i>Clim. Past 8(1)</i>: 337-351. <a href=\"http://dx.doi.org/10.5194/cp-8-337-2012\" target=\"_blank\">http://dx.doi.org/10.5194/cp-8-337-2012</a>","StandardTitle":"Precessional and half-precessional climate forcing of Mid-Devonian monsoon-like dynamics","AuthorsString":"De Vleeschouwer, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231170,"RR":"<b>Bertrand, S.; Hughen, K.A.; Lamy, F.; Stuut, J.-B.W.; Torrejón, F.; Lange, C.B.</b> (2012). Precipitation as the main driver of Neoglacial fluctuations of Gualasglacier, Northern Patagonian Icefield. <i>Clim. Past 8(2)</i>: 519-534. <a href=\"http://dx.doi.org/10.5194/cp-8-519-2012\" target=\"_blank\">dx.doi.org/10.5194/cp-8-519-2012</a>","StandardTitle":"Precipitation as the main driver of Neoglacial fluctuations of Gualasglacier, Northern Patagonian Icefield","AuthorsString":"Bertrand, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238962,"RR":"<b>Ganssen, G.M.; Peeters, F.J.C.; Metcalfe, B.; Anand, P.; Jung, S.J.H.; Kroon, D.; Brummer, G.-J.A.</b> (2011). Quantifying sea surface temperature ranges of the Arabian Sea for the past 20 000 years. <i>Clim. Past 7</i>: 1337–1349. <a href=\"http://dx.doi.org/10.5194/cp-7-1337-2011\" target=\"_blank\">http://dx.doi.org/10.5194/cp-7-1337-2011</a>","StandardTitle":"Quantifying sea surface temperature ranges of the Arabian Sea for the past 20 000 years","AuthorsString":"Ganssen, G.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":328229,"RR":"<b>Dietze, E.; Mangelsdorf, K.; Andreev, A.; Karger, C.; Schreuder, L.T.; Hopmans, E.C.; Rach, O.; Sachse, D.; Wennrich, V.; Herzschuh, U.</b> (2020). Relationships between low-temperature fires, climate and vegetation during three late glacials and interglacials of the last 430 kyr in northeastern Siberia reconstructed from monosaccharide anhydrides in Lake El'gygytgyn sediments. <i>Clim. Past 16(2)</i>: 799-818. <a href=\"https://dx.doi.org/10.5194/cp-16-799-2020\" target=\"_blank\">https://dx.doi.org/10.5194/cp-16-799-2020</a>","StandardTitle":"Relationships between low-temperature fires, climate and vegetation during three late glacials and interglacials of the last 430 kyr in northeastern Siberia reconstructed from monosaccharide anhydrides in Lake El'gygytgyn sediments","AuthorsString":"Dietze, E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":247069,"RR":"<b>Qiuzhen, Y.; Singh, U.K.; Berger, A.; Guo, T; Crucifix, M.</b> (2014). Relative impact of insolation and the Indo-Pacific warm pool surface temperature on the East Asia summer monsoon during the MIS-13 interglacial. <i>Clim. Past 10(5)</i>: 1645-1657. <a href=\"http://dx.doi.org/10.5194/cp-10-1645-2014\" target=\"_blank\">dx.doi.org/10.5194/cp-10-1645-2014</a>","StandardTitle":"Relative impact of insolation and the Indo-Pacific warm pool surface temperature on the East Asia summer monsoon during the MIS-13 interglacial","AuthorsString":"Qiuzhen, Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363212,"RR":"<b>Bouttes, N.; Swingedouw, D.; Roche, D.M.; Sanchez Goñi, M.F.; Crosta, X.</b> (2018). Response of the carbon cycle in an intermediate complexity model to the different climate configurations of the last nine interglacials. <i>Clim. Past 14(2)</i>: 239-253. <a href=\"https://dx.doi.org/10.5194/cp-14-239-2018\" target=\"_blank\">https://dx.doi.org/10.5194/cp-14-239-2018</a>","StandardTitle":"Response of the carbon cycle in an intermediate complexity model to the different climate configurations of the last nine interglacials","AuthorsString":"Bouttes, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":239902,"RR":"<b>Kasper, S.; van der Meer, M.T.J.; Mets, A.; Zahn, R.; Sinninghe Damsté, J.S.; Schouten, S.</b> (2014). Salinity changes in the Agulhas leakage area recorded by stable hydrogen isotopes of C<sub>37</sub> alkenones during Termination I and II. <i>Clim. Past 10(1)</i>: 251-260. <a href=\"http://dx.doi.org/10.5194/cp-10-251-2014\" target=\"_blank\">dx.doi.org/10.5194/cp-10-251-2014</a>","StandardTitle":"Salinity changes in the Agulhas leakage area recorded by stable hydrogen isotopes of C<sub>37</sub> alkenones during Termination I and II","AuthorsString":"Kasper, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362035,"RR":"<b>Johnson, A.L.A.; Valentine, A.M.; Schöne, B.R.; Leng, M.J.; Goolaerts, S.</b> (2022). Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea basin and its implications. <i>Clim. Past 18(5)</i>: 1203-1229. <a href=\"https://dx.doi.org/10.5194/cp-18-1203-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-1203-2022</a>","StandardTitle":"Sclerochronological evidence of pronounced seasonality from the late Pliocene of the southern North Sea basin and its implications","AuthorsString":"Johnson, A.L.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":361631,"RR":"<b>Sliwinska, K.K.; Coxall, H.K.; Hutchinson, D.K.; Liebrand, D.; Schouten, S.; de Boer, A.M.</b> (2023). Sea surface temperature evolution of the North Atlantic Ocean across the Eocene–Oligocene transition. <i>Clim. Past 19(1)</i>: 123-140. <a href=\"https://dx.doi.org/10.5194/cp-19-123-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-123-2023</a>","StandardTitle":"Sea surface temperature evolution of the North Atlantic Ocean across the Eocene–Oligocene transition","AuthorsString":"Sliwinska, K.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231393,"RR":"<b>Trommer, G.; Siccha, M.; Rohling, E.J.; Grant, K.; van der Meer, M.T.J.; Schouten, S.; Baranowski, U.; Kucera, M.</b> (2011). Sensitivity of Red Sea circulation to sea level and insolation forcing during the last interglacial. <i>Clim. Past 7(3)</i>: 941-955. <a href=\"http://dx.doi.org/10.5194/cp-7-941-2011\" target=\"_blank\">dx.doi.org/10.5194/cp-7-941-2011</a>","StandardTitle":"Sensitivity of Red Sea circulation to sea level and insolation forcing during the last interglacial","AuthorsString":"Trommer, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":241294,"RR":"<b>Contreras, L.; Pross, J.; Bijl, P.K.; O'Hara, R.B.; Raine, J.I.; Sluijs, A.; Brinkhuis, H.</b> (2014). Southern high-latitude terrestrial climate change during the Palaeocene–Eocene derived from a marine pollen record (ODP Site 1172, East Tasman Plateau). <i>Clim. Past 10</i>: 1401-1420. <a href=\"http://dx.doi.org/10.5194/cp-10-1401-2014\" target=\"_blank\">http://dx.doi.org/10.5194/cp-10-1401-2014</a>","StandardTitle":"Southern high-latitude terrestrial climate change during the Palaeocene–Eocene derived from a marine pollen record (ODP Site 1172, East Tasman Plateau)","AuthorsString":"Contreras, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":220506,"RR":"<b>Sluijs, A.; Bijl, P.K.; Schouten, S.; Röhl, U.; Reichart, G.-J.; Brinkhuis, H.</b> (2011). Southern Ocean warming, sea level and hydrological change during the Paleocene-Eocene thermal maximum. <i>Clim. Past 7(1)</i>: 47-61. <a href=\"http://dx.doi.org/10.5194/cp-7-47-2011\" target=\"_blank\">http://dx.doi.org/10.5194/cp-7-47-2011</a>","StandardTitle":"Southern Ocean warming, sea level and hydrological change during the Paleocene-Eocene thermal maximum","AuthorsString":"Sluijs, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":257955,"RR":"<b>Guo, Z.; Berger, A.; Yin, Q.Z.; Qin, L.</b> (2009). Strong asymmetry of hemispheric climates during MIS-13 inferred from correlating China loess and Antarctica ice records. <i>Clim. Past 5(1)</i>: 21-31. <a href=\"http://dx.doi.org/10.5194/cp-5-21-2009\" target=\"_blank\">http://dx.doi.org/10.5194/cp-5-21-2009</a>","StandardTitle":"Strong asymmetry of hemispheric climates during MIS-13 inferred from correlating China loess and Antarctica ice records","AuthorsString":"Guo, Z. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296166,"RR":"<b>Yin, Q.Z.; Guo, Z.T.</b> (2008). Strong summer monsoon during the cool MIS-13. <i>Clim. Past 4(1)</i>: 29-34. <a href=\"https://dx.doi.org/10.5194/cp-4-29-2008\" target=\"_blank\">https://dx.doi.org/10.5194/cp-4-29-2008</a>","StandardTitle":"Strong summer monsoon during the cool MIS-13","AuthorsString":"Yin, Q.Z.; Guo, Z.T.","BibLvlCode":"AS"},{"BRefID":329675,"RR":"<b>Cramwinckel, M.J.; Woelders, L.; Huurdeman, E.P.; Peterse, F.; Gallagher, S.J.; Pross, J.; Burgess, C.E.; Reichart, G.-J.; Sluijs, A.; Bijl, P.K.</b> (2020). Surface-circulation change in the southwest Pacific Ocean across the Middle Eocene Climatic Optimum: inferences from dinoflagellate cysts and biomarker paleothermometry. <i>Clim. Past 16(5)</i>: 1667-1689. <a href=\"https://dx.doi.org/10.5194/cp-16-1667-2020\" target=\"_blank\">https://dx.doi.org/10.5194/cp-16-1667-2020</a>","StandardTitle":"Surface-circulation change in the southwest Pacific Ocean across the Middle Eocene Climatic Optimum: inferences from dinoflagellate cysts and biomarker paleothermometry","AuthorsString":"Cramwinckel, M.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":339810,"RR":"<b>Hoem, F.S.; Valero, L.; Evangelinos, D.; Escutia, C.; Duncan, B.; McKay, R.M.; Brinkhuis, H.; Sangiorgi, F.; Bijl, P.K.</b> (2021). Temperate Oligocene surface ocean conditions offshore of Cape Adare, Ross Sea, Antarctica. <i>Clim. Past 17(4)</i>: 1423-1442. <a href=\"https://dx.doi.org/10.5194/cp-17-1423-2021\" target=\"_blank\">https://dx.doi.org/10.5194/cp-17-1423-2021</a>","StandardTitle":"Temperate Oligocene surface ocean conditions offshore of Cape Adare, Ross Sea, Antarctica","AuthorsString":"Hoem, F.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296127,"RR":"<b>Crespin, E.; Goosse, H.; Fichefet, T.; Mann, M.E.</b> (2009). The 15th century Arctic warming in coupled model simulations with data assimilation. <i>Clim. Past 5(3)</i>: 389-401. <a href=\"https://dx.doi.org/10.5194/cp-5-389-2009\" target=\"_blank\">https://dx.doi.org/10.5194/cp-5-389-2009</a>","StandardTitle":"The 15th century Arctic warming in coupled model simulations with data assimilation","AuthorsString":"Crespin, E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391443,"RR":"<b>Bouchet, M.; Landais, A.; Grisart, A.; Parrenin, F.; Prie, F.; Jacob, R.; Fourre, E.; Capron, E.; Raynaud, D.; Lipenkov, V.Y.; Loutre, M.-F.; Extier, T.; Svensson, A.; Legrain, E.; Martinerie, P.; Leuenberger, M.; Jiang, W.; Ritterbusch, F.; Lu, Z.T.; Yang, G.M.</b> (2023). The Antarctic Ice Core Chronology 2023 (AICC2023) chronological framework and associated timescale for the European Project for Ice Coring in Antarctica (EPICA) Dome C ice core. <i>Clim. Past 19(11)</i>: 2257-2286. <a href=\"https://dx.doi.org/10.5194/cp-19-2257-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-2257-2023</a>","StandardTitle":"The Antarctic Ice Core Chronology 2023 (AICC2023) chronological framework and associated timescale for the European Project for Ice Coring in Antarctica (EPICA) Dome C ice core","AuthorsString":"Bouchet, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":288489,"RR":"<b>Lattaud, J.; Dorhout, D.; Schulz, H.; Castañeda, I.S.; Schefuß, E.; Sinninghe Damsté, J.S.; Schouten, S.</b> (2017). The C<sub>32</sub> alkane-1,15-diol as a proxy of late Quaternary riverine input in coastal margins. <i>Clim. Past 13(8)</i>: 1049-1061. <a href=\"https://doi.org/10.5194/cp-13-1049-2017\" target=\"_blank\">https://doi.org/10.5194/cp-13-1049-2017</a>","StandardTitle":"The C<sub>32</sub> alkane-1,15-diol as a proxy of late Quaternary riverine input in coastal margins","AuthorsString":"Lattaud, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":437313,"RR":"<b>Kaya, M.Y.; Brinkhuis, H.; Fioroni, C.; Atasoy, S.G.; Licht, A.; Nürnberg, D.; Vural, T.</b> (2025). The Eocene–Oligocene Transition in the Paratethys: boreal water ingression and its paleoceanographic implications. <i>Clim. Past 21(8)</i>: 1405-1429. <a href=\"https://dx.doi.org/10.5194/cp-21-1405-2025\" target=\"_blank\">https://dx.doi.org/10.5194/cp-21-1405-2025</a>","StandardTitle":"The Eocene–Oligocene Transition in the Paratethys: boreal water ingression and its paleoceanographic implications","AuthorsString":"Kaya, M.Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":296167,"RR":"<b>Yin, Q.; Berger, A.; Driesschaert, E.; Goosse, H.; Loutre, M.-F.; Crucifix, M.</b> (2008). The Eurasian ice sheet reinforces the East Asian summer monsoon during the interglacial 500 000 years ago. <i>Clim. Past 4(2)</i>: 79-90","StandardTitle":"The Eurasian ice sheet reinforces the East Asian summer monsoon during the interglacial 500 000 years ago","AuthorsString":"Yin, Q. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295963,"RR":"<b>Nikolova, I.; Yin, Q.; Berger, A.; Singh, U.K.; Karami, M.P.</b> (2013). The last interglacial (Eemian) climate simulated by LOVECLIM and CCSM3. <i>Clim. Past 9(4)</i>: 1789-1806. <a href=\"https://dx.doi.org/10.5194/cp-9-1789-2013\" target=\"_blank\">https://dx.doi.org/10.5194/cp-9-1789-2013</a>","StandardTitle":"The last interglacial (Eemian) climate simulated by LOVECLIM and CCSM3","AuthorsString":"Nikolova, I. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":292199,"RR":"<b>Frieling, J.; Reichart, G.-J.; Middelburg, J.J.; Röhl, U.; Westerhold, T.; Bohaty, S.M.; Sluijs, A.</b> (2018). Tropical Atlantic climate and ecosystem regime shifts during the Paleocene–Eocene Thermal Maximum. <i>Clim. Past 14(1)</i>: 39-55. <a href=\"https://dx.doi.org/10.5194/cp-14-39-2018\" target=\"_blank\">https://dx.doi.org/10.5194/cp-14-39-2018</a>","StandardTitle":"Tropical Atlantic climate and ecosystem regime shifts during the Paleocene–Eocene Thermal Maximum","AuthorsString":"Frieling, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285245,"RR":"<b>Turney, C.S.M.; Fogwill, C.J.; Palmer, J.G.; van Sebille, E.; Thomas, Z.; McGlone, M.; Richardson, S.; Wilmshurst, J.M.; Fenwick, P.; Zunz, V.; Goosse, H.; Wilson, K.-J.; Carter, L.; Lipson, M.; Jones, R.T.; Harsch, M.; Clark, G.; Marzinelli, E.; Rogers, T.; Rainsley, E.; Ciasto, L.; Waterman, S.; Thomas, E.R.; Visbeck, M.</b> (2017). Tropical forcing of increased Southern Ocean climate variability revealed by a 140-year subantarctic temperature reconstruction. <i>Clim. Past 13(3)</i>: 231-248. <a href=\"https://dx.doi.org/10.5194/cp-13-231-2017\" target=\"_blank\">https://dx.doi.org/10.5194/cp-13-231-2017</a>","StandardTitle":"Tropical forcing of increased Southern Ocean climate variability revealed by a 140-year subantarctic temperature reconstruction","AuthorsString":"Turney, C.S.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231379,"RR":"<b>Groot, M.H.M.; Bogotá, R.G.; Lourens, L.J.; Hooghiemstra, H.; Vriend, M.; Berrio, J.C.; Tuenter, E.; Van der Plicht, J.; van Geel, B.; Ziegler, M.; Weber, S.L.; Betancourt, A.; Contreras, L.; Gaviria, S.; Giraldo, C.; González, N.; Jansen, J.H.F.; Konert, M.; Ortega, D.; Rangel, O.; Sarmiento, G.; Vandenberghe, J.; Van der Hammen, T.; van der Linden, M.; Westerhoff, W.</b> (2011). Ultra-high resolution pollen record from the northern Andes reveals rapid shifts in montane climates within the last two glacial cycles. <i>Clim. Past 7(1)</i>: 299-316","StandardTitle":"Ultra-high resolution pollen record from the northern Andes reveals rapid shifts in montane climates within the last two glacial cycles","AuthorsString":"Groot, M.H.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295969,"RR":"<b>Mathiot, P.; Goosse, H.; Crosta, X.; Stenni, B.; Renssen, H.; Van Meerbeeck, C.J.; Masson-Delmotte, V.; Mairesse, A.; Dubinkina, S.</b> (2013). Using data assimilation to investigate the causes of Southern Hemisphere high latitude cooling from 10 to 8 ka BP. <i>Clim. Past 9(2)</i>: 887-901. <a href=\"https://dx.doi.org/10.5194/cp-9-887-2013\" target=\"_blank\">https://dx.doi.org/10.5194/cp-9-887-2013</a>","StandardTitle":"Using data assimilation to investigate the causes of Southern Hemisphere high latitude cooling from 10 to 8 ka BP","AuthorsString":"Mathiot, P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":350497,"RR":"<b>Jonkers, L.; Brummer, G.-J. A.; Meilland, J.; Groeneveld, J.; Kucera, M.</b> (2022). Variability in <i>Neogloboquadrina pachyderma</i> stable isotope ratios from isothermal conditions: implications for individual foraminifera analysis. <i>Clim. Past 18(1)</i>: 89-101. <a href=\"https://dx.doi.org/10.5194/cp-18-89-2022\" target=\"_blank\">https://dx.doi.org/10.5194/cp-18-89-2022</a>","StandardTitle":"Variability in <i>Neogloboquadrina pachyderma</i> stable isotope ratios from isothermal conditions: implications for individual foraminifera analysis","AuthorsString":"Jonkers, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":231174,"RR":"<b>Jenkyns, H.C.; Schouten-Huibers, L.; Schouten, S.; Sinninghe Damsté, J.S.</b> (2012). Warm Middle Jurassic-Early Cretaceous high-latitude sea-surface temperatures from the Southern Ocean. <i>Clim. Past 8(1)</i>: 215-226. <a href=\"http://dx.doi.org/10.5194/cp-8-215-2012\" target=\"_blank\">dx.doi.org/10.5194/cp-8-215-2012</a>","StandardTitle":"Warm Middle Jurassic-Early Cretaceous high-latitude sea-surface temperatures from the Southern Ocean","AuthorsString":"Jenkyns, H.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":241292,"RR":"<b>Sluijs, A.; van Roij, L.; Harrington, G.J.; Schouten, S.; Sessa, J.A.; LeVay, L.J.; Reichart, G.-J.; Slomp, C.P.</b> (2014). Warming, euxinia and sea level rise during the Paleocene–Eocene Thermal Maximum on the Gulf Coastal Plain: implications for ocean oxygenation and nutrient cycling. <i>Clim. 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