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A Systematic Role for Extreme Ocean‐Atmosphere Oscillations in the Development of Glacial Conditions Since the Mid Pleistocene Transition.
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- Paleoceanography & Paleoclimatology, 2023, v. 38, n. 12, p. 1, doi. 10.1029/2023PA004690
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- Article
Meridional Heat Transport in the DeepMIP Eocene Ensemble: Non‐CO<sub>2</sub> and CO<sub>2</sub> Effects.
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- Paleoceanography & Paleoclimatology, 2023, v. 38, n. 8, p. 1, doi. 10.1029/2022PA004607
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Global and Zonal‐Mean Hydrological Response to Early Eocene Warmth.
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- Paleoceanography & Paleoclimatology, 2023, v. 38, n. 6, p. 1, doi. 10.1029/2022PA004542
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African Hydroclimate During the Early Eocene From the DeepMIP Simulations.
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- Paleoceanography & Paleoclimatology, 2022, v. 37, n. 5, p. 1, doi. 10.1029/2022PA004419
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- Article
The Relationship Between the Global Mean Deep‐Sea and Surface Temperature During the Early Eocene.
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- Paleoceanography & Paleoclimatology, 2023, v. 38, n. 3, p. 1, doi. 10.1029/2022PA004532
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- Article
The Impact of Different Atmospheric CO<sub>2</sub> Concentrations on Large Scale Miocene Temperature Signatures.
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- Paleoceanography & Paleoclimatology, 2023, v. 38, n. 2, p. 1, doi. 10.1029/2022PA004438
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- Article
Early Eocene Ocean Meridional Overturning Circulation: The Roles of Atmospheric Forcing and Strait Geometry.
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- Paleoceanography & Paleoclimatology, 2022, v. 37, n. 3, p. 1, doi. 10.1029/2021PA004329
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Effects of CO<sub>2</sub> and Ocean Mixing on Miocene and Pliocene Temperature Gradients.
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- Paleoceanography & Paleoclimatology, 2022, v. 37, n. 2, p. 1, doi. 10.1029/2020PA003953
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Strengthening Atlantic Inflow Across the Mid‐Pleistocene Transition.
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- Paleoceanography & Paleoclimatology, 2021, v. 36, n. 4, p. 1, doi. 10.1029/2020PA004200
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- Article
Simulated Thermohaline Fingerprints in Response to Different Greenland‐Scotland Ridge and Fram Strait Subsidence Histories.
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- Paleoceanography & Paleoclimatology, 2020, v. 35, n. 7, p. 1, doi. 10.1029/2019PA003842
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- Article
Early Interglacial Legacy of Deglacial Climate Instability.
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- Paleoceanography & Paleoclimatology, 2019, v. 34, n. 8, p. 1455, doi. 10.1029/2019PA003661
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- Article
Impact of Mountains in Southern China on the Eocene Climates of East Asia.
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- Journal of Geophysical Research. Atmospheres, 2022, v. 127, n. 17, p. 1, doi. 10.1029/2022JD036510
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- Article
A comprehensive Earth system model (AWI-ESM2.1) with interactive icebergs: effects on surface and deep-ocean characteristics.
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- Geoscientific Model Development, 2024, v. 17, n. 8, p. 3279, doi. 10.5194/gmd-17-3279-2024
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- Article
AMOC modes linked with distinct North Atlantic deep water formation sites.
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- Climate Dynamics, 2022, v. 59, n. 3/4, p. 837, doi. 10.1007/s00382-022-06156-w
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- Article
Millennial scale feedbacks determine the shape and rapidity of glacial termination.
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- Nature Communications, 2021, v. 12, n. 1, p. 1, doi. 10.1038/s41467-021-22388-6
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- Article
The Effect of Obliquity‐Driven Changes on Paleoclimate Sensitivity During the Late Pleistocene.
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- Geophysical Research Letters, 2018, v. 45, n. 13, p. 6661, doi. 10.1029/2018GL077717
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- Article
Dependence of abrupt Atlantic meridional ocean circulation changes on climate background states.
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- Geophysical Research Letters, 2013, v. 40, n. 14, p. 3698, doi. 10.1002/grl.50701
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- Article
Rapid Laurentide Ice Sheet growth preceding the Last Glacial Maximum due to summer snowfall.
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- Nature Geoscience, 2024, v. 17, n. 5, p. 440, doi. 10.1038/s41561-024-01419-z
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Direct astronomical influence on abrupt climate variability.
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- Nature Geoscience, 2021, v. 14, n. 11, p. 819, doi. 10.1038/s41561-021-00846-6
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- Article
A salty deep ocean as a prerequisite for glacial termination.
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- Nature Geoscience, 2021, v. 14, n. 12, p. 930, doi. 10.1038/s41561-021-00857-3
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- Article
Abrupt North Atlantic circulation changes in response to gradual CO<sub>2</sub> forcing in a glacial climate state.
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- Nature Geoscience, 2017, v. 10, n. 7, p. 518, doi. 10.1038/ngeo2974
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- Article
Climate warming during Antarctic ice sheet expansion at the Middle Miocene transition.
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- Nature Geoscience, 2014, v. 7, n. 5, p. 376, doi. 10.1038/ngeo2119
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DeepMIP-Eocene-p1: multi-model dataset and interactive web application for Eocene climate research.
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- Scientific Data, 2024, v. 11, n. 1, p. 1, doi. 10.1038/s41597-024-03773-4
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- Article
Interhemispheric Atlantic seesaw response during the last deglaciation.
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- Nature, 2009, v. 457, n. 7233, p. 1097, doi. 10.1038/nature07770
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- Article
A comprehensive Earth System Model (AWI-ESM2.1) with interactive icebergs: Effects on surface and deep ocean characteristics.
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- Geoscientific Model Development Discussions, 2023, p. 1, doi. 10.5194/egusphere-2023-2061
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- Article
Contribution of the coupled atmosphere–ocean–sea ice–vegetation model COSMOS to the PlioMIP2.
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- Climate of the Past, 2020, v. 16, n. 6, p. 2275, doi. 10.5194/cp-16-2275-2020
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- Article
DeepMIP: model intercomparison of early Eocene climatic optimum (EECO) large-scale climate features and comparison with proxy data.
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- Climate of the Past, 2021, v. 17, n. 1, p. 203, doi. 10.5194/cp-17-203-2021
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- Article
Sea level fall during glaciation stabilized atmospheric CO<sub>2</sub> by enhanced volcanic degassing.
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- Nature Communications, 2017, v. 8, n. 7, p. 15867, doi. 10.1038/ncomms15867
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- Article
Threshold in North Atlantic-Arctic Ocean circulation controlled by the subsidence of the Greenland-Scotland Ridge.
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- Nature Communications, 2017, v. 8, n. 6, p. 15681, doi. 10.1038/ncomms15681
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- Article
Corrigendum: The seasonal sea-ice zone in the glacial Southern Ocean as a carbon sink.
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- Nature Communications, 2016, v. 7, n. 6, p. 12004, doi. 10.1038/ncomms12004
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Evidence for ice-free summers in the late Miocene central Arctic Ocean.
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- Nature Communications, 2016, v. 7, n. 4, p. 11148, doi. 10.1038/ncomms11148
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- Article
The seasonal sea-ice zone in the glacial Southern Ocean as a carbon sink.
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- Nature Communications, 2015, v. 6, n. 9, p. 8136, doi. 10.1038/ncomms9136
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Permafrost thawing as a possible source of abrupt carbon release at the onset of the Bølling/Allerød.
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- Nature Communications, 2014, v. 5, n. 11, p. 5520, doi. 10.1038/ncomms6520
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- Article
DeepMIP: Model intercomparison of early Eocene climatic optimum (EECO) large-scale climate features and comparison with proxy data.
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- Climate of the Past Discussions, 2020, p. 1, doi. 10.5194/cp-2019-149
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- Article
Southern Ocean origin for the resumption of Atlantic thermohaline circulation during deglaciation.
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- Nature, 2003, v. 424, n. 6948, p. 532, doi. 10.1038/nature01855
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Modeled difference between the Oligocene and Miocene Antarctic ice sheet.
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- Geophysical Research Abstracts, 2019, v. 21, p. 1
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Extremely low seasonality in the Late Cretaceous Arctic Ocean simulated by the Earth system model.
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- Geophysical Research Abstracts, 2019, v. 21, p. 1
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Modelled abrupt climate change under persisted freshwater hosing.
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- Geophysical Research Abstracts, 2019, v. 21, p. 1
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- Article
What causes the mid-brunhes transition in benthic d18O stack?
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- Geophysical Research Abstracts, 2019, v. 21, p. 1
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Glacial Climate Stability: Pathway to understand abrupt glacial climate shifts.
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- Geophysical Research Abstracts, 2018, v. 20, p. 6597
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Icebergs not the trigger for North Atlantic cold events.
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- Nature, 2015, v. 520, n. 7547, p. 333, doi. 10.1038/nature14330
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Abrupt glacial climate shifts controlled by ice sheet changes.
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- Nature, 2014, v. 512, n. 7514, p. 290, doi. 10.1038/nature13592
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- Article
Rapid transitions in the Atlantic thermohaline circulation triggered by global warming and meltwater during the last deglaciation.
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- Geochemistry, Geophysics, Geosystems: G3, 2007, v. 8, n. 12, p. n/a, doi. 10.1029/2007GC001604
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Geology datasets of North America for use with ice sheet models.
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- Earth System Science Data Discussions, 2018, p. 1, doi. 10.5194/essd-2018-139
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Geology datasets in North America, Greenland and surrounding areas for use with ice sheet models.
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- Earth System Science Data, 2019, v. 11, n. 1, p. 375, doi. 10.5194/essd-11-375-2019
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- Article