Ecosystem fluxes of carbonyl sulfide in an old-growth forest: temporal dynamics and responses to diffuse radiation and heat waves

Carbonyl sulfide (OCS) has recently emerged as a tracer for terrestrial carbon uptake. While physiological studies relating OCS fluxes to leaf stomatal dynamics have been established at leaf and branch scales and incorporated into global carbon cycle models, the quantity of data from ecosystem-scale...

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Published inBiogeosciences Vol. 15; no. 23; pp. 7127 - 7139
Main Authors Rastogi, Bharat, Berkelhammer, Max, Wharton, Sonia, Whelan, Mary E, Meinzer, Frederick C, Noone, David, Still, Christopher J
Format Journal Article
LanguageEnglish
Published Katlenburg-Lindau Copernicus GmbH 30.11.2018
European Geosciences Union
Copernicus Publications
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Summary:Carbonyl sulfide (OCS) has recently emerged as a tracer for terrestrial carbon uptake. While physiological studies relating OCS fluxes to leaf stomatal dynamics have been established at leaf and branch scales and incorporated into global carbon cycle models, the quantity of data from ecosystem-scale field studies remains limited. In this study, we employ established theoretical relationships to infer ecosystem-scale plant OCS uptake from mixing ratio measurements. OCS fluxes showed a pronounced diurnal cycle, with maximum uptake at midday. OCS uptake was found to scale with independent measurements of CO2 fluxes over a 60 m tall old-growth forest in the Pacific Northwest of the US (45∘49′13.76′′ N, 121∘57′06.88′′ W) at daily and monthly timescales under mid–high light conditions across the growing season in 2015. OCS fluxes were strongly influenced by the fraction of downwelling diffuse light. Finally, we examine the effect of sequential heat waves on fluxes of OCS, CO2, and H2O. Our results bolster previous evidence that ecosystem OCS uptake is strongly related to stomatal dynamics, and measuring this gas improves constraints on estimating photosynthetic rates at the ecosystem scale.
Bibliography:AC52-07NA27344
USDOE National Nuclear Security Administration (NNSA)
LLNL-JRNL-798098
ISSN:1726-4189
1726-4170
1726-4189
DOI:10.5194/bg-15-7127-2018