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Journal Article

Rising water levels increase CH 4 emissions and decrease CO 2 exchange in a temperate salt marsh

Dan Yang; Asger Buur Jensen; Brian K. Sorrell; Hans Brix; Franziska Eller
Limnology and Oceanography · Vol. 70, Issue 2 · pp. 291-304 · 2025

Abstract

Saline wetlands play a crucial role in climate regulation through their robust cooling effect, attributed to rapid carbon sequestration and minimal methane production. However, a comprehensive understanding of the mechanisms controlling their greenhouse gas (GHG) balance is lacking, particularly in salt marshes that are fully or partially submerged due to rising sea levels. We conducted a controlled manipulative experiment to test the effect of water levels on GHG emissions, including four water table levels: ‐10, 0, +5 cm and a fluctuating water table. We used soil cores from a Spartina anglica ‐dominated salt marsh and examined the CO 2 and CH 4 fluxes over a growing season. Daylight CO 2 uptake and dark CO 2 emission were highest at the ‐10cm water table, while CH 4 emissions were lowest at this water table. CO 2 and CH 4 fluxes were primarily driven by air and water temperature and solar irradiance. Our results indicate that salt marshes with near‐surface water levels (‐10 to 5 cm) function as potent CO 2 sinks and minor sources of CH 4 during the growing season. The high photosynthetic carbon assimilation combined with low CH 4 fluxes resulted in a Global Warming Potential value of ‐326 g CO 2 eq m −2 on a 100‐year scale. Our study accounted for CH 4 fluxes, CO 2 uptake and emission together, and identified the mechanisms controlling CO 2 and CH 4 exchange. This approach is crucial for evaluating the potential of saline tidal wetlands as net carbon sinks and for developing scientifically sound climate mitigation policies.

Bibliographic Information

JournalLimnology and Oceanography
PublisherWiley
Publication Date2025-02-01
Publication Year2025
Volume70
Issue2
Pages291-304
Document TypeJournal Article
Print ISSN0024-3590
eISSN1939-5590
DOI10.1002/lno.12742
SubjectAquatic Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://aslopubs.onlinelibrary.wiley.com/loi/19395590
Publisher PageOpen Publisher Page
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