Shallow-water hydrothermal venting linked to the Palaeocene–Eocene Thermal Maximum

Author:

Berndt ChristianORCID,Planke SverreORCID,Alvarez Zarikian Carlos A.ORCID,Frieling JoostORCID,Jones Morgan T.ORCID,Millett John M.ORCID,Brinkhuis HenkORCID,Bünz StefanORCID,Svensen Henrik H.,Longman JackORCID,Scherer Reed P.ORCID,Karstens JensORCID,Manton BenORCID,Nelissen MeiORCID,Reed Brandon,Faleide Jan IngeORCID,Huismans Ritske S.ORCID,Agarwal AmarORCID,Andrews Graham D. M.ORCID,Betlem PeterORCID,Bhattacharya Joyeeta,Chatterjee SayantaniORCID,Christopoulou Marialena,Clementi Vincent J.ORCID,Ferré Eric C.ORCID,Filina Irina Y.ORCID,Guo PengyuanORCID,Harper Dustin T.,Lambart SarahORCID,Mohn GeoffroyORCID,Nakaoka Reina,Tegner ChristianORCID,Varela NataliaORCID,Wang MengyuanORCID,Xu WeimuORCID,Yager Stacy L.

Abstract

AbstractThe Palaeocene–Eocene Thermal Maximum (PETM) was a global warming event of 5–6 °C around 56 million years ago caused by input of carbon into the ocean and atmosphere. Hydrothermal venting of greenhouse gases produced in contact aureoles surrounding magmatic intrusions in the North Atlantic Igneous Province have been proposed to play a key role in the PETM carbon-cycle perturbation, but the precise timing, magnitude and climatic impact of such venting remains uncertain. Here we present seismic data and the results of a five-borehole transect sampling the crater of a hydrothermal vent complex in the Northeast Atlantic. Stable carbon isotope stratigraphy and dinoflagellate cyst biostratigraphy reveal a negative carbon isotope excursion coincident with the appearance of the index taxon Apectodinium augustum in the vent crater, firmly tying the infill to the PETM. The shape of the crater and stratified sediments suggests large-scale explosive gas release during the initial phase of vent formation followed by rapid, but largely undisturbed, diatomite-rich infill. Moreover, we show that these vents erupted in very shallow water across the North Atlantic Igneous Province, such that volatile emissions would have entered the atmosphere almost directly without oxidation to CO2 and at the onset of the PETM.

Funder

JOIDES Resolution Science Operator Texas A&M University College Station, TX

Publisher

Springer Science and Business Media LLC

Subject

General Earth and Planetary Sciences

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