KOPRI Repository

Decadal increases in carbon uptake offset by respiratory losses across northern permafrost ecosystems

Cited 0 time in wos
Cited 0 time in scopus
Title
Decadal increases in carbon uptake offset by respiratory losses across northern permafrost ecosystems
Other Titles
최근 수십년 북반구 영구동토층 생태계에서 호흡량으로 인한 탄소 흡수량의 상쇄효과 증가
Authors
See Craig R.
Virkkala Anna-Maria
Natali Susan M.
Rogers Brendan M.
Mauritz Marguerite
Biasi Christina
Bokhorst Stef
Boike Julia
Bret-Harte M. Syndonia
Celis Gerardo
Chae Namyi
Christensen Torben R.
Murner (Connon) Sara June
Dengel Sigrid
Dolman Han
Edgar Colin W.
Elberling Bo
Emmerton Craig A.
Euskirchen Eugenie S.
Goeckede Mathias
Grelle Achim
Heffernan Liam
Helbig Manuel
Holl David
Humphreys Elyn
Iwata Hiroki
Jaerveoja Jaervi
Kobayashi Hideki
Kochendorfer John
Kolari Pasi
Kotani Ayumi
Kutzbach Lars
Kwon Min Jung
Lathrop Emma R.
Lopez-Blanco Efren
Mammarella Ivan
Marushchak Maija E.
Mastepanov Mikhail
Matsuura Yojiro
Merbold Lutz
Meyer Gesa
Minions Christina
Nilsson Mats B.
Nojeim Julia
Oberbauer Steven F.
Olefeldt David
Park, Sang-Jong
Parmentier Frans-Jan W.
Peichl Matthias
Peter Darcy
Petrov Roman
Poyatos Rafael
Prokushkin Anatoly S.
Quinton William
Rodenhizer Heidi
Sachs Torsten
Savage Kathleen
Schulze Christopher
Sjoegersten Sofie
Sonnentag Oliver
St. Louis Vincent L.
Torn Margaret S.
Tuittila Eeva-Stiina
Ueyama Masahito
Varlagin Andrej
Voigt Carolina
Watts Jennifer D.
Zona Donatella
Zyryanov Viacheslav I.
Schuur Edward A. G.
Keywords
carbon cyclecarbon uptakenitrogen limitpermafrost ecosystemrespiration
Issue Date
2024-07
Citation
See Craig R., et al. 2024. "Decadal increases in carbon uptake offset by respiratory losses across northern permafrost ecosystems". NATURE CLIMATE CHANGE, 14(0): 853-862.
Abstract
Tundra and boreal ecosystems encompass the northern circumpolar permafrost region and are experiencing rapid environmental change with important implications for the global carbon (C) budget. We analysed multi-decadal time series containing 302 annual estimates of carbon dioxide (CO2) flux across 70 permafrost and non-permafrost ecosystems, and 672 estimates of summer CO2 flux across 181 ecosystems. We find an increase in the annual CO2 sink across non-permafrost ecosystems but not permafrost ecosystems, despite similar increases in summer uptake. Thus, recent non-growing-season CO2 losses have substantially impacted the CO2 balance of permafrost ecosystems. Furthermore, analysis of interannual variability reveals warmer summers amplify the C cycle (increase productivity and respiration) at putatively nitrogen-limited sites and at sites less reliant on summer precipitation for water use. Our findings suggest that water and nutrient availability will be important predictors of the C-cycle response of these ecosystems to future warming. The future of carbon dynamics in the northern high latitudes is uncertain yet represents an important potential feedback under climate change. This study uses a comprehensive observational dataset to show an increasing carbon sink in non-permafrost systems; in permafrost systems uptake was offset by loss.
URI
https://repository.kopri.re.kr/handle/201206/16275
DOI
http://dx.doi.org/10.1038/s41558-024-02057-4
Type
Article
Station
기타()
Indexed
SCIE
Appears in Collections  
2024-2025, 북극 동토-대기환경기반 종합 모니터링 및 상호관계 규명 (24-25) / 이방용 (PN24011)
Files in This Item
There are no files associated with this item.

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Browse