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bioRxiv · 10.1101/2024.09.06.611638

Photochemical processes drive thermal responses of dissolved organic matter in the dark ocean

Abstract

How dissolved organic matter (DOM) responds to climate warming is critical for understanding its role in future ocean carbon cycling. Here, we use a highly resolved dataset of over 800 DOM samples covering the surface waters to the deep Atlantic, Southern, and Pacific oceans to examine the changes in DOM molecular composition in response to warming water temperatures, referred to as DOM thermal responses. Towards the deep waters, the strength (i.e., overall magnitude) and diversity (i.e., variation among molecules) of these thermal responses both decline. However, these responses show opposite trends with the concentration of more recalcitrant molecules, decreasing and increasing, respectively. These contrasting trends concur with the observation that, compared to the strength of thermal responses, their diversity is more strongly explained by photochemical processes of DOM. By projecting global ocean thermal responses from 1950 to 2020 using environmental temperature, salinity and radiation, we predict that increases in the diversity of thermal responses are unexpectedly largest at deeper depths (> 1,000 m). Such increases could elevate the recalcitrant deep-ocean carbon sink by approximately 10 Tg C yr-1, which accounts for > 5% of the carbon flux reaching and persisting in the deep ocean. Our findings highlight the role of photochemical processes in imprinting DOM thermal responses, offering new insights into the future capacity of the oceanic carbon sink under global climate change.

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BibTeXRIS

Hu, A., Cui, Y., Bercovici, S., Tanentzap, A., Lennon, J., Lin, X., Yang, Y., Liu, Y., Osterholz, H., Dong, H., Lu, Y., Jiao, N., Wang, J.. 2024-09-09. Photochemical processes drive thermal responses of dissolved organic matter in the dark ocean. https://doi.org/10.1101/2024.09.06.611638

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