The amount and timing of precipitation control the magnitude, seasonality and sources (14 C) of ecosystem respiration in a polar semi-desert, northwestern Greenland

International audience This study investigates how warming and changes in precipitation may affect the cycling of carbon (C) in tundra soils, and between high Arctic tundra and the atmosphere. We quantified ecosystem respiration (R eco) and soil pore space CO 2 in a polar semi-desert in northwestern...

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Bibliographic Details
Published in:Biogeosciences
Main Authors: Lupascu, M, Welker, J.M., Seibt, U, Xu, X, Velicogna, I, Lindsey, D.S., Czimczik, C. I.
Other Authors: University of California Irvine (UC Irvine), University of California (UC), University of Alaska Anchorage, University of California Los Angeles (UCLA), Biogéochimie et écologie des milieux continentaux (Bioemco), École normale supérieure - Paris (ENS-PSL), Université Paris Sciences et Lettres (PSL)-Université Paris Sciences et Lettres (PSL)-Institut de Recherche pour le Développement (IRD)-Institut National de la Recherche Agronomique (INRA)-Université Pierre et Marie Curie - Paris 6 (UPMC)-AgroParisTech-Centre National de la Recherche Scientifique (CNRS), California Institute of Technology (CALTECH)
Format: Article in Journal/Newspaper
Language:English
Published: HAL CCSD 2014
Subjects:
Online Access:https://hal.sorbonne-universite.fr/hal-01308028
https://hal.sorbonne-universite.fr/hal-01308028/document
https://hal.sorbonne-universite.fr/hal-01308028/file/bg-11-4289-2014.pdf
https://doi.org/10.5194/bg-11-4289-2014
Description
Summary:International audience This study investigates how warming and changes in precipitation may affect the cycling of carbon (C) in tundra soils, and between high Arctic tundra and the atmosphere. We quantified ecosystem respiration (R eco) and soil pore space CO 2 in a polar semi-desert in northwestern Green-land under current and future climate conditions simulated by long-term experimental warming (+2 • C, +4 • C), water addition (+50 % summer precipitation), and a combination of both (+4 • C × +50 % summer precipitation). We also measured the 14 C content of R eco and soil CO 2 to distinguish young C cycling rapidly between the atmosphere and the ecosystem from older C stored in the soil for centuries to millennia. We identified changes in the amount and timing of precipitation as a key control of the magnitude, seasonality and sources of R eco in a polar semi-desert. Throughout each summer , small (< 4 mm) precipitation events during drier periods triggered the release of very old C pulses from the deep soil, while larger precipitation events (> 4 mm), more winter snow and experimental irrigation were associated with higher R eco fluxes and the release of recently fixed (young) C. Warmer summers and experimental warming also resulted in higher R eco fluxes (+2 • C > +4 • C), but coincided with losses of older C. We conclude that in high Arctic, dry tundra systems, future magnitudes and patterns of old C emissions will be controlled as much by the summer precipitation regime and winter snowpack as by warming. The release of older soil C is of concern, as it may lead to net C losses from the ecosystem. Therefore, reliable predictions of precipitation amounts, frequency , and timing are required to predict the changing C cycle in the high Arctic.