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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Voigt, C., Virkkala, A., Hould Gosselin, G., Bennett, K. A., Black, T. A., Detto, M., Chevrier-Dion, C., Guggenberger, G., Hashmi, W., Kohl, L., Kou, D., Marquis, C., Marsh, P., Marushchak, M. E., Nesic, Z., Nykänen, H., Saarela, T., Sauheitl, L., Walker, B., Weiss, N., Wilcox, E. J., Sonnentag, O.
Title
Arctic soil methane sink increases with drier conditions and higher ecosystem respiration
Year
2023
Publication Outlet
Nature Climate Change, Vol 13, Iss 10, Pg 1095-1104
DOI
https://doi.org/10.1038/s41558-023-01785-3
ISSN
1758-6798
Citation
Voigt, C., Virkkala, A., Hould Gosselin, G., Bennett, K. A., Black, T. A., Detto, M., Chevrier-Dion, C., Guggenberger, G., Hashmi, W., Kohl, L., Kou, D., Marquis, C., Marsh, P., Marushchak, M. E., Nesic, Z., Nykänen, H., Saarela, T., Sauheitl, L., Walker, B., Weiss, N., Wilcox, E. J., Sonnentag, O. (2023) Arctic soil methane sink increases with drier conditions and higher ecosystem respiration, Nature Climate Change, Vol 13, Iss 10, Pg 1095-1104, issn 1758-6798, https://doi.org/10.1038/s41558-023-01785-3
Abstract
Arctic wetlands are known methane (CH4) emitters but recent studies suggest that the Arctic CH4 sink strength may be underestimated. Here we explore the capacity of well-drained Arctic soils to consume atmospheric CH4 using >40,000 hourly flux observations and spatially distributed flux measurements from 4 sites and 14 surface types. While consumption of atmospheric CH4 occurred at all sites at rates of 0.092 ± 0.011 mgCH4 m−2 h−1 (mean ± s.e.), CH4 uptake displayed distinct diel and seasonal patterns reflecting ecosystem respiration. Combining in situ flux data with laboratory investigations and a machine learning approach, we find biotic drivers to be highly important. Soil moisture outweighed temperature as an abiotic control and higher CH4 uptake was linked to increased availability of labile carbon. Our findings imply that soil drying and enhanced nutrient supply will promote CH4 uptake by Arctic soils, providing a negative feedback to global climate change.
Program Affiliations
GWF: Global Water Futures
GWFO: Global Water Futures Observatories
Publication Stage
Published
Download Links
https://doi.org/10.1038/s41558-023-01785-3
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