Retreat of the Antarctic Ice Sheet During the Last Interglaciation and Implications for Future Change
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P. Clark | R. McKay | F. He | N. Golledge | C. Fogwill | C. Turney | D. Lowry | A. Carlson | G. Dunbar | A. Dutton | T. Naish | N. Bertler | R. Levy
[1] R. Hatfield,et al. Absence of West Antarctic-sourced silt at ODP Site 1096 in the Bellingshausen Sea during the last interglaciation: Support for West Antarctic ice-sheet deglaciation , 2021, Quaternary Science Reviews.
[2] P. Clark,et al. Rapid postglacial rebound amplifies global sea level rise following West Antarctic Ice Sheet collapse , 2021, Science Advances.
[3] J. Donges,et al. The hysteresis of the Antarctic Ice Sheet , 2020, Nature.
[4] Matt A. King,et al. Reduced ice mass loss and three-dimensional viscoelastic deformation in northern Antarctic Peninsula inferred from GPS , 2020 .
[5] S. Tulaczyk,et al. Ice retreat in Wilkes Basin of East Antarctica during a warm interglacial , 2020, Nature.
[6] P. Valdes,et al. Antarctic Ice Sheet Elevation Impacts on Water Isotope Records During the Last Interglacial , 2020, Geophysical Research Letters.
[7] A. Bliss,et al. Partitioning the Uncertainty of Ensemble Projections of Global Glacier Mass Change , 2020, Earth's Future.
[8] O. Eisen,et al. Limited Retreat of the Wilkes Basin Ice Sheet During the Last Interglacial , 2020, Geophysical Research Letters.
[9] L. Sime,et al. Analysing the timing of peak warming and minimum winter sea-ice extent in the Southern Ocean during MIS 5e , 2020, Quaternary Science Reviews.
[10] C. Fogwill,et al. A global mean sea surface temperature dataset for the Last Interglacial (129–116 ka) and contribution of thermal expansion to sea level change , 2020, Earth System Science Data.
[11] Carling C Hay,et al. Viscous Effects in the Solid Earth Response to Modern Antarctic Ice Mass Flux: Implications for Geodetic Studies of WAIS Stability in a Warming World , 2020, Journal of Climate.
[12] P. Clark,et al. Oceanic forcing of penultimate deglacial and last interglacial sea-level rise , 2020, Nature.
[13] V. Petrenko,et al. Global ocean heat content in the Last Interglacial , 2020, Nature Geoscience.
[14] D. Etheridge,et al. Early Last Interglacial ocean warming drove substantial ice mass loss from Antarctica , 2018, Proceedings of the National Academy of Sciences.
[15] A. Roberts,et al. Asynchronous Antarctic and Greenland ice-volume contributions to the last interglacial sea-level highstand , 2019, Nature Communications.
[16] Elizabeth D. Keller,et al. Global environmental consequences of twenty-first-century ice-sheet melt , 2019, Nature.
[17] R. McKay,et al. Ice loss from the East Antarctic Ice Sheet during late Pleistocene interglacials , 2018, Nature.
[18] R. McKay,et al. Pliocene deglacial event timelines and the biogeochemical response offshore Wilkes Subglacial Basin, East Antarctica , 2018, Earth and Planetary Science Letters.
[19] V. Brovkin,et al. Palaeoclimate constraints on the impact of 2 °C anthropogenic warming and beyond , 2018, Nature Geoscience.
[20] R. V. D. Wal,et al. Simulation of the Greenland Ice Sheet over two glacial–interglacial cycles: investigating a sub-ice- shelf melt parameterization and relative sea level forcing in an ice-sheet–ice-shelf model , 2017 .
[21] Matt A. King,et al. Rapid ice unloading in the Fleming Glacier region, southern Antarctic Peninsula, and its effect on bedrock uplift rates , 2017 .
[22] Maik Thomas,et al. Melting and freezing under Antarctic ice shelves from a combination of ice-sheet modelling and observations , 2017, Journal of Glaciology.
[23] R. McKay,et al. Antarctic climate and ice-sheet configuration during the early Pliocene interglacial at 4.23 Ma , 2017 .
[24] R. Arthern,et al. The sensitivity of West Antarctica to the submarine melting feedback , 2017 .
[25] R. McKay,et al. East Antarctic ice sheet most vulnerable to Weddell Sea warming , 2017 .
[26] P. Clark,et al. Regional and global sea-surface temperatures during the last interglaciation , 2017, Science.
[27] T. Fichefet,et al. Last Interglacial climate and sea-level evolution from a coupled ice sheet–climate model , 2016 .
[28] R. McKay,et al. Interactive comment on “Antarctic climate and ice sheet configuration during a peak-warmth Early Pliocene interglacial” by Nicholas R. Golledge et al , 2017 .
[29] V. Masson‐Delmotte,et al. How warm was Greenland during the last interglacial period , 2016 .
[30] J. Singarayer,et al. Antarctic last interglacial isotope peak in response to sea ice retreat not ice-sheet collapse , 2016, Nature Communications.
[31] A. Robinson,et al. Reconstructing the last interglacial at Summit, Greenland: Insights from GISP2 , 2016, Proceedings of the National Academy of Sciences.
[32] Matt A. King,et al. Glacial isostatic adjustment in response to changing Late Holocene behaviour of ice streams on the Siple Coast, West Antarctica , 2016 .
[33] R. DeConto,et al. Contribution of Antarctica to past and future sea-level rise , 2016, Nature.
[34] D. Sugden,et al. Assessing the continuity of the blue ice climate record at Patriot Hills, Horseshoe Valley, West Antarctica , 2016 .
[35] Matt A. King,et al. Uplift rates from a new high-density GPS network in Palmer Land indicate significant late Holocene ice loss in the southwestern Weddell Sea , 2015 .
[36] Maureen E. Raymo,et al. The impact of dynamic topography change on Antarctic ice sheet stability during the mid-Pliocene warm period , 2015 .
[37] S. Rahmstorf,et al. Sea-level rise due to polar ice-sheet mass loss during past warm periods , 2015, Science.
[38] D. Frierson,et al. Influence of West Antarctic Ice Sheet collapse on Antarctic surface climate , 2015 .
[39] D. Heslop,et al. Bipolar seesaw control on last interglacial sea level , 2015, Nature.
[40] Stuart N. Lane,et al. Erosion by an Alpine glacier , 2015, Science.
[41] R. Wieler,et al. Drivers of abrupt Holocene shifts in West Antarctic ice stream direction determined from combined ice sheet modelling and geologic signatures , 2014, Antarctic Science.
[42] R. McKay,et al. Orbital forcing of the East Antarctic ice sheet during the Pliocene and Early Pleistocene , 2014 .
[43] A. Levermann,et al. Interaction of marine ice-sheet instabilities in two drainage basins: simple scaling of geometry and transition time , 2014 .
[44] A. Levermann,et al. Ice plug prevents irreversible discharge from East Antarctica , 2014 .
[45] B. Smith,et al. Marine Ice Sheet Collapse Potentially Under Way for the Thwaites Glacier Basin, West Antarctica , 2014, Science.
[46] Matt A. King,et al. Low post-glacial rebound rates in the Weddell Sea due to Late Holocene ice-sheet readvance , 2014, Earth and Planetary Science Letters.
[47] A. Ganopolski,et al. Simulating the Greenland ice sheet under present-day and palaeo constraints including a new discharge parameterization , 2014 .
[48] Robert B. Dunbar,et al. Dynamic behaviour of the East Antarctic ice sheet during Pliocene warmth , 2013 .
[49] Michael Schulz,et al. Information from paleoclimate archives , 2013 .
[50] Kenji Kawamura,et al. Eemian interglacial reconstructed from a Greenland folded ice core , 2013, Nature.
[51] E. Ivins,et al. Timing of the most recent Neoglacial advance and retreat in the South Shetland Islands, Antarctic Peninsula: insights from raised beaches and Holocene uplift rates , 2012 .
[52] R. Hatfield,et al. Sr-Nd-Pb Isotope Evidence for Ice-Sheet Presence on Southern Greenland During the Last Interglacial , 2011, Science.
[53] A. Timmermann,et al. Climate and biogeochemical response to a rapid melting of the West-Antarctic Ice Sheet during interglacials and implications for future climate , 2010 .
[54] E. Bueler,et al. The Potsdam Parallel Ice Sheet Model (PISM-PIK) – Part 1: Model description , 2010 .
[55] Princeton University.,et al. Global and local sea level during the Last Interglacial: A probabilistic assessment , 2009, 0903.0752.
[56] Ed Bueler,et al. Shallow shelf approximation as a “sliding law” in a thermomechanically coupled ice sheet model , 2008, 0810.3449.
[57] H. Grobe,et al. Volcanic time-markers for Marine Isotopic Stages 6 and 5 in Southern Ocean sediments and Antarctic ice cores: implications for tephra correlations between palaeoclimatic records , 2008 .
[58] Jed Brown,et al. Fast computation of a viscoelastic deformable Earth model for ice-sheet simulations , 2007, Annals of Glaciology.
[59] J. A. Kallen-Brown,et al. Computation of a combined spherical-elastic and viscous-half-space earth model for ice sheet simulation , 2006, physics/0606074.
[60] David Pollard,et al. Antarctic ice and sediment flux in the Oligocene simulated by a climate–ice sheet–sediment model , 2003 .
[61] Philippe Huybrechts,et al. Sea-level changes at the LGM from ice-dynamic reconstructions of the Greenland and Antarctic ice sheets during the glacial cycles , 2002 .
[62] Philippe Huybrechts,et al. The Dynamic Response of the Greenland and Antarctic Ice Sheets to Multiple-Century Climatic Warming , 1999 .
[63] J. A. Clark,et al. A numerical model of interactions between a marine ice sheet and the solid earth: Application to a West Antarctic ice stream , 1985 .