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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Sánchez, M.E., Petrone, R.M. & Westbrook, C.J.
Title
Winter and early spring CO2 losses in a montane peatland are amplified by foehn winds
Year
2026
Publication Outlet
Sci Rep (2026).
DOI
https://doi.org/10.1038/s41598-026-50725-6
Citation
Sánchez, M.E., Petrone, R.M. & Westbrook, C.J. Winter and early spring CO2 losses in a montane peatland are amplified by foehn winds. Sci Rep (2026). https://doi.org/10.1038/s41598-026-50725-6
Abstract
Rapid mid-winter and early spring warming events are emerging as a key but under-recognized driver of carbon loss from cold-region ecosystems. In mountain peatlands, their influence remains largely unknown. Here, we quantify the impact of chinook wind events—warm, dry downslope winds that can raise air temperatures by over 20 °C within hours—on ecosystem respiration in a montane peatland on the eastern slopes of the Canadian Rockies. Using eddy covariance carbon dioxide (CO2) flux measurements and meteorological data, 13 chinook events were identified between February and May 2021 and segmented each into pre-, during-, and post-event phases. A generalized additive mixed model accounting for temporal autocorrelation showed that CO2 emission rates increased significantly during chinook events and remained elevated afterward. CO2 emissions during snow-covered events in February-April were most likely driven by physical degassing from melting snow and thawing surface peat, whereas snow-free events in April and May likely reflected enhanced microbial activity in thawing peat. Our findings demonstrate that regularly occurring cold-season warming events can trigger substantial but short-lived CO2 releases from mountain peatlands, revealing a climate-sensitive carbon loss pathway likely to intensify as snowpack duration shortens and freeze-thaw regimes shift in mountain regions world-wide.
Program Affiliations
GWF: Global Water Futures
GWFO: Global Water Futures Observatories
Project Affiliations
GWF-MWF: Mountain Water Futures
Publication Stage
Published
Additional Information
Related dataset: Winter and early spring CO2 losses in a montane peatland are amplified by foehn winds ( https://zenodo.org/records/16884435 )
Download Links
https://www.nature.com/articles/s41598-026-50725-6_reference.pdf
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