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Observing system needs for understanding carbon–climate feedbacks

Datos Bibliográficos

ID15548865
AutoresDustin Carroll (0000-0003-1686-5255, Jet Propulsion Laboratory, autor de correspondencia), N Parazoo (0000-0002-4165-4532, Jet Propulsion Laboratory), Nicole S Lovenduski (0000-0001-5893-1009, University of Colorado Boulder), Michael Keller (0000-0002-2886-0964, International Institute of Tropical Forestry), David Schimel (0000-0003-3473-8065, Jet Propulsion Laboratory), A Anthony Bloom (0000-0002-1486-1499, Jet Propulsion Laboratory)
Año2025
Volumen20
Número11
Páginas111002-111002
Fecha de publicación2025-09-24
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ae0ae8
OpenAlexW4414460921
IdiomaEN
Referencias citadas25

Carbon–climate (CC) feedbacks — arising from response of land and ocean carbon sinks to elevated CO 2 and climate warming — are critical yet highly uncertain drivers of Earth’s climate trajectory. Processes such as permafrost thaw, tropical forest dieback, reduced ocean uptake, and intensifying climate extremes are already weakening natural carbon sinks, with potential to amplify warming and accelerate crossing of tipping points. Detecting and quantifying these dynamics requires sustained, high-resolution, spatially-comprehensive Earth Observations. Drawing on outcomes from a 2024 community workshop, we identify three core priorities for advancing CC feedback monitoring: (1) frequent, long-term measurements of carbon fluxes and stocks at sub-continental scales; (2) improved flux detectability using greenhouse gas partial columns; and (3) targeted monitoring of poorly-observed vulnerable regions, such as the tropics, high latitudes, and the Southern Ocean. We argue that a unified, multi-platform observing system, built on lower-cost, proven technologies and orbits and focused on high-risk observation gaps, would significantly reduce uncertainties in Earth System Models, provide early warnings of feedbacks and tipping points, inform climate mitigation strategies, and enhance transparency in carbon monitoring

Carbon flux · Carbon sink · Climate change · Climate system · Earth system science · Global warming · Greenhouse gas · Permafrost · Climate Change Policy and Economics · Environmental Impact and Sustainability

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