Antiphased dust deposition and productivity in the Antarctic Zone over 1.5 million years
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Published:2022-04-19
Issue:1
Volume:13
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Weber Michael E.ORCID, Bailey IanORCID, Hemming Sidney R.ORCID, Martos Yasmina M.ORCID, Reilly Brendan T., Ronge Thomas A., Brachfeld StefanieORCID, Williams TrevorORCID, Raymo Maureen, Belt Simon T.ORCID, Smik Lukas, Vogel HendrikORCID, Peck Victoria L., Armbrecht LindaORCID, Cage AlixORCID, Cardillo Fabricio G., Du Zhiheng, Fauth Gerson, Fogwill Christopher J.ORCID, Garcia Marga, Garnsworthy Marlo, Glüder Anna, Guitard Michelle, Gutjahr MarcusORCID, Hernández-Almeida IvánORCID, Hoem Frida S.ORCID, Hwang Ji-Hwan, Iizuka Mutsumi, Kato YujiORCID, Kenlee Bridget, OConnell Suzanne, Pérez Lara F., Seki Osamu, Stevens Lee, Tauxe Lisa, Tripathi Shubham, Warnock JonathanORCID, Zheng Xufeng
Abstract
AbstractThe Southern Ocean paleoceanography provides key insights into how iron fertilization and oceanic productivity developed through Pleistocene ice-ages and their role in influencing the carbon cycle. We report a high-resolution record of dust deposition and ocean productivity for the Antarctic Zone, close to the main dust source, Patagonia. Our deep-ocean records cover the last 1.5 Ma, thus doubling that from Antarctic ice-cores. We find a 5 to 15-fold increase in dust deposition during glacials and a 2 to 5-fold increase in biogenic silica deposition, reflecting higher ocean productivity during interglacials. This antiphasing persisted throughout the last 25 glacial cycles. Dust deposition became more pronounced across the Mid-Pleistocene Transition (MPT) in the Southern Hemisphere, with an abrupt shift suggesting more severe glaciations since ~0.9 Ma. Productivity was intermediate pre-MPT, lowest during the MPT and highest since 0.4 Ma. Generally, glacials experienced extended sea-ice cover, reduced bottom-water export and Weddell Gyre dynamics, which helped lower atmospheric CO2 levels.
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
Reference85 articles.
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