Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula

<p>The reconstruction of past sea-ice distribution in the Southern Ocean is crucial for an improved understanding of ice–ocean–atmosphere feedbacks and the evaluation of Earth system and Antarctic ice sheet models. The Antarctic Peninsula (AP) has been experiencing a warming since the start of...

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Published in:Climate of the Past
Main Authors: M.-E. Vorrath, J. Müller, P. Cárdenas, T. Opel, S. Mieruch, O. Esper, L. Lembke-Jene, J. Etourneau, A. Vieth-Hillebrand, N. Lahajnar, C. B. Lange, A. Leventer, D. Evangelinos, C. Escutia, G. Mollenhauer
Format: Article
Language:English
Published: Copernicus Publications 2023-05-01
Online Access:https://cp.copernicus.org/articles/19/1061/2023/cp-19-1061-2023.pdf
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author M.-E. Vorrath
J. Müller
J. Müller
J. Müller
P. Cárdenas
T. Opel
S. Mieruch
O. Esper
L. Lembke-Jene
J. Etourneau
J. Etourneau
A. Vieth-Hillebrand
N. Lahajnar
C. B. Lange
C. B. Lange
C. B. Lange
C. B. Lange
A. Leventer
D. Evangelinos
D. Evangelinos
C. Escutia
G. Mollenhauer
G. Mollenhauer
author_facet M.-E. Vorrath
J. Müller
J. Müller
J. Müller
P. Cárdenas
T. Opel
S. Mieruch
O. Esper
L. Lembke-Jene
J. Etourneau
J. Etourneau
A. Vieth-Hillebrand
N. Lahajnar
C. B. Lange
C. B. Lange
C. B. Lange
C. B. Lange
A. Leventer
D. Evangelinos
D. Evangelinos
C. Escutia
G. Mollenhauer
G. Mollenhauer
author_sort M.-E. Vorrath
collection DOAJ
container_title Climate of the Past
description <p>The reconstruction of past sea-ice distribution in the Southern Ocean is crucial for an improved understanding of ice–ocean–atmosphere feedbacks and the evaluation of Earth system and Antarctic ice sheet models. The Antarctic Peninsula (AP) has been experiencing a warming since the start of regular monitoring of the atmospheric temperature in the 1950s. The associated decrease in sea-ice cover contrasts the trend of growing sea-ice extent in East Antarctica. To reveal the long-term sea-ice history at the northern Antarctic Peninsula (NAP) under changing climate conditions, we examined a marine sediment core from the eastern basin of the Bransfield Strait covering the last Deglacial and the Holocene. For sea-ice reconstructions, we focused on the specific sea-ice biomarker lipid IPSO<span class="inline-formula"><sub>25</sub></span>, a highly branched isoprenoid (HBI), and sea-ice diatoms, whereas a phytoplankton-derived HBI triene (C<span class="inline-formula"><sub>25:3</sub></span>) and warmer open-ocean diatom assemblages reflect predominantly ice-free conditions. We further reconstruct ocean temperatures using glycerol dialkyl glycerol tetraethers (GDGTs) and diatom assemblages and compare our sea-ice and temperature records with published marine sediment and ice core data. A maximum ice cover is observed during the Antarctic Cold Reversal 13 800–13 000 years before present (13.8–13 ka), while seasonally ice-free conditions permitting (summer) phytoplankton productivity are reconstructed for the late Deglacial and the Early Holocene from 13 to 8.3 ka. An overall decreasing sea-ice trend throughout the Middle Holocene coincides with summer ocean warming and increasing phytoplankton productivity. The Late Holocene is characterized by highly variable winter sea-ice concentrations and a sustained decline in the duration and/or concentration of spring sea ice. Overall diverging trends in GDGT-based TEX<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M3" display="inline" overflow="scroll" dspmath="mathml"><mrow><msubsup><mi/><mn mathvariant="normal">86</mn><mi mathvariant="normal">L</mi></msubsup></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="11pt" height="17pt" class="svg-formula" dspmath="mathimg" md5hash="1633c280fe8bf893b6a2f733a8e2adce"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="cp-19-1061-2023-ie00001.svg" width="11pt" height="17pt" src="cp-19-1061-2023-ie00001.png"/></svg:svg></span></span> and RI-OH' subsurface ocean temperatures (SOTs) are found to<span id="page1062"/> be linked to opposing spring and summer insolation trends, respectively.</p>
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spelling doaj-art-e243c90b2e4b45ada3944265b7e118b52025-08-19T22:06:03ZengCopernicus PublicationsClimate of the Past1814-93241814-93322023-05-01191061107910.5194/cp-19-1061-2023Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic PeninsulaM.-E. Vorrath0J. Müller1J. Müller2J. Müller3P. Cárdenas4T. Opel5S. Mieruch6O. Esper7L. Lembke-Jene8J. Etourneau9J. Etourneau10A. Vieth-Hillebrand11N. Lahajnar12C. B. Lange13C. B. Lange14C. B. Lange15C. B. Lange16A. Leventer17D. Evangelinos18D. Evangelinos19C. Escutia20G. Mollenhauer21G. Mollenhauer22Institute for Geology, University Hamburg, Hamburg, GermanyAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyMARUM – Center for Marine Environmental Sciences, University of Bremen, Bremen, GermanyDepartment of Geosciences, University of Bremen, Bremen, GermanyCentro de Investigación Dinámica de Ecosistemas Marinos de Altas Latitudes (IDEAL), Universidad Austral de Chile, Valdivia, ChileAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyEPHE/PSL Research University, University of Bordeaux, Bordeaux, FranceUMR 5805 EPOC, CNRS, Université de Bordeaux, Bordeaux, FranceHelmholtz Centre Potsdam GFZ German Research Centre for Geosciences, Potsdam, GermanyInstitute for Geology, University Hamburg, Hamburg, GermanyCentro de Investigación Dinámica de Ecosistemas Marinos de Altas Latitudes (IDEAL), Universidad Austral de Chile, Valdivia, ChileCentro Oceanográfico COPAS-Coastal, Universidad de Concepción, Concepción, ChileDepartamento de Oceanografía, Universidad de Concepción, Concepción, ChileScripps Institution of Oceanography, La Jolla, CA 92037, USADepartment of Earth and Environmental Geosciences, Colgate University, New York, USAUMR 5805 EPOC, CNRS, Université de Bordeaux, Bordeaux, FranceDepartament de Dinàmica de la Terra i de l'Oceàn, Universitat de Barcelona, Barcelona, SpainInstituto Andaluz de Ciencia de la tierra, CSIC-Univ. de Granada, Granada, SpainAlfred Wegener Institute, Helmholtz Centre for Polar and Marine Research, Bremerhaven, GermanyMARUM – Center for Marine Environmental Sciences, University of Bremen, Bremen, Germany<p>The reconstruction of past sea-ice distribution in the Southern Ocean is crucial for an improved understanding of ice–ocean–atmosphere feedbacks and the evaluation of Earth system and Antarctic ice sheet models. The Antarctic Peninsula (AP) has been experiencing a warming since the start of regular monitoring of the atmospheric temperature in the 1950s. The associated decrease in sea-ice cover contrasts the trend of growing sea-ice extent in East Antarctica. To reveal the long-term sea-ice history at the northern Antarctic Peninsula (NAP) under changing climate conditions, we examined a marine sediment core from the eastern basin of the Bransfield Strait covering the last Deglacial and the Holocene. For sea-ice reconstructions, we focused on the specific sea-ice biomarker lipid IPSO<span class="inline-formula"><sub>25</sub></span>, a highly branched isoprenoid (HBI), and sea-ice diatoms, whereas a phytoplankton-derived HBI triene (C<span class="inline-formula"><sub>25:3</sub></span>) and warmer open-ocean diatom assemblages reflect predominantly ice-free conditions. We further reconstruct ocean temperatures using glycerol dialkyl glycerol tetraethers (GDGTs) and diatom assemblages and compare our sea-ice and temperature records with published marine sediment and ice core data. A maximum ice cover is observed during the Antarctic Cold Reversal 13 800–13 000 years before present (13.8–13 ka), while seasonally ice-free conditions permitting (summer) phytoplankton productivity are reconstructed for the late Deglacial and the Early Holocene from 13 to 8.3 ka. An overall decreasing sea-ice trend throughout the Middle Holocene coincides with summer ocean warming and increasing phytoplankton productivity. The Late Holocene is characterized by highly variable winter sea-ice concentrations and a sustained decline in the duration and/or concentration of spring sea ice. Overall diverging trends in GDGT-based TEX<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M3" display="inline" overflow="scroll" dspmath="mathml"><mrow><msubsup><mi/><mn mathvariant="normal">86</mn><mi mathvariant="normal">L</mi></msubsup></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="11pt" height="17pt" class="svg-formula" dspmath="mathimg" md5hash="1633c280fe8bf893b6a2f733a8e2adce"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="cp-19-1061-2023-ie00001.svg" width="11pt" height="17pt" src="cp-19-1061-2023-ie00001.png"/></svg:svg></span></span> and RI-OH' subsurface ocean temperatures (SOTs) are found to<span id="page1062"/> be linked to opposing spring and summer insolation trends, respectively.</p>https://cp.copernicus.org/articles/19/1061/2023/cp-19-1061-2023.pdf
spellingShingle M.-E. Vorrath
J. Müller
J. Müller
J. Müller
P. Cárdenas
T. Opel
S. Mieruch
O. Esper
L. Lembke-Jene
J. Etourneau
J. Etourneau
A. Vieth-Hillebrand
N. Lahajnar
C. B. Lange
C. B. Lange
C. B. Lange
C. B. Lange
A. Leventer
D. Evangelinos
D. Evangelinos
C. Escutia
G. Mollenhauer
G. Mollenhauer
Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title_full Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title_fullStr Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title_full_unstemmed Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title_short Deglacial and Holocene sea-ice and climate dynamics in the Bransfield Strait, northern Antarctic Peninsula
title_sort deglacial and holocene sea ice and climate dynamics in the bransfield strait northern antarctic peninsula
url https://cp.copernicus.org/articles/19/1061/2023/cp-19-1061-2023.pdf
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