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Intensified surface chlorophyll responses to the Indian Ocean Dipole under greenhouse warming

Bibliographic Data

ID15545017
AuthorsGayan Pathirana (0000-0002-4670-579X, Pohang University of Science and Technology, corresponding author), Kyung Min Noh (0000-0003-4233-4490, Pohang University of Science and Technology), Dong-Geon Lee (Pohang University of Science and Technology), Hyo-Jin Park (0000-0002-9140-0821, Yonsei University), Dongxiao Wang (0000-0001-8778-2188, Sun Yat-sen University), Jong‐Seong Kug (0000-0003-2251-2579, Pohang University of Science and Technology)
Year2024
Volume19
Issue6
Pages064072-064072
Publication date2024-05-20
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ad4db8
OpenAlexW4398145062
LanguageEN
References cited56

The Indian Ocean Dipole (IOD) has been proposed to be a key driver of biological processes in the Indian Ocean (IO) in the present climate. Given the expected influence of global warming on both the properties of the IOD and the biogeochemistry within the IO, a key question arises: How will the relationship between the IOD and surface chlorophyll evolve in a warming climate? Here, utilizing simulations from the Coupled Model Intercomparison Project Phase 6 Earth System models, our findings reveal a notable intensification in the IOD-chlorophyll relationship under greenhouse warming. This intensification is linked to an increase in surface chlorophyll during the June to November period of positive IOD years in the southeastern IO (SEIO). Interestingly, our analysis indicates a substantial rise in IOD-related chlorophyll levels in a warming climate, despite a marked decrease in IOD-induced upwelling in the SEIO. The shallower thermocline leads to an increase in the mean nutrient concentration in the subsurface layer, thereby facilitating an enhanced anomalous nutrient supply to the surface layer, which contributes to increased surface chlorophyll. Our study highlights the consequential effects of IOD on chlorophyll dynamics and underscores the need for improved coupled models to advance our understanding of biophysical interactions in the IO in response to global warming

Agronomy · Atmospheric sciences · Biology · Botany · Chlorophyll · Chlorophyll a · Climate change · Climatology · Effects of global warming on oceans · Global warming · Greenhouse · Greenhouse gas · Indian Ocean Dipole · Sea surface temperature · Climate variability and models · Environmental Science · Marine and coastal ecosystems · Oceanographic and Atmospheric Processes · Geology · Horticulture · Oceanography

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