Carbon isotope records reveal precise timing of enhanced Southern Ocean upwelling during the last deglaciation

The Southern Ocean plays a prominent role in the Earth’s climate and carbon cycle. Changes in the Southern Ocean circulation may have regulated the release of CO2 to the atmosphere from a deep-ocean reservoir during the last deglaciation. However, the path and exact timing of this deglacial CO2 rele...

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Bibliographic Details
Published in:Nature Communications
Main Authors: Siani, Giuseppe, Michel, Elisabeth, De Pol-Holz, Ricardo, DeVries, Tim, Lamy, Frank, Carel, Mélanie, Isguder, Gulay, Dewilde, Fabien, Lourantou, Anna
Format: Article in Journal/Newspaper
Language:unknown
Published: Macmillan Publishers 2013
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Online Access:https://epic.awi.de/id/eprint/34917/
https://epic.awi.de/id/eprint/34917/1/Sianietal2013.pdf
http://www.nature.com/ncomms/2013/131108/ncomms3758/full/ncomms3758.html
https://hdl.handle.net/10013/epic.43069
https://hdl.handle.net/10013/epic.43069.d001
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Summary:The Southern Ocean plays a prominent role in the Earth’s climate and carbon cycle. Changes in the Southern Ocean circulation may have regulated the release of CO2 to the atmosphere from a deep-ocean reservoir during the last deglaciation. However, the path and exact timing of this deglacial CO2 release are still under debate. Here we present measurements of deglacial surface reservoir 14C age changes in the eastern Pacific sector of the Southern Ocean, obtained by 14C dating of tephra deposited over the marine and terrestrial regions. These results, along with records of foraminifera benthic–planktic 14C age and δ13C difference, provide evidence for three periods of enhanced upwelling in the Southern Ocean during the last deglaciation, supporting the hypothesis that Southern Ocean upwelling contributed to the deglacial rise in atmospheric CO2. These independently dated marine records suggest synchronous changes in the Southern Ocean circulation and Antarctic climate during the last deglaciation.