Multiple carbon cycle mechanisms associated with the glaciation of Marine Isotope Stage 4.

Menking, James A; Shackleton, Sarah A; Bauska, Thomas K; Buffen, Aron M; Brook, Edward J; Barker, Stephen; Severinghaus, Jeffrey P; Dyonisius, Michael N et al. · Nat Commun · 2022

basic_science · Level V

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Abstract

Here we use high-precision carbon isotope data (δ<sup>13</sup>C-CO<sub>2</sub>) to show atmospheric CO<sub>2</sub> during Marine Isotope Stage 4 (MIS 4, ~70.5-59 ka) was controlled by a succession of millennial-scale processes. Enriched δ<sup>13</sup>C-CO<sub>2</sub> during peak glaciation suggests increased ocean carbon storage. Variations in δ<sup>13</sup>C-CO<sub>2</sub> in early MIS 4 suggest multiple processes were active during CO<sub>2</sub> drawdown, potentially including decreased land carbon and decreased Southern Ocean air-sea gas exchange superposed on increased ocean carbon storage. CO<sub>2</sub> remained low during MIS 4 while δ<sup>13</sup>C-CO<sub>2</sub> fluctuations suggest changes in Southern Ocean and North Atlantic air-sea gas exchange. A 7 ppm increase in CO<sub>2</sub> at the onset of Dansgaard-Oeschger event 19 (72.1 ka) and 27 ppm increase in CO<sub>2</sub> during late MIS 4 (Heinrich Stadial 6, ~63.5-60 ka) involved additions of isotopically light carbon to the atmosphere. The terrestrial biosphere and Southern Ocean air-sea gas exchange are possible sources, with the latter event also involving decreased ocean carbon storage.

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