Stomatal control of leaf fluxes of carbonyl sulfide and CO<sub>2</sub> in a <i>Typha</i> freshwater marsh
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Published:2018-06-04
Issue:11
Volume:15
Page:3277-3291
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Sun WuORCID, Maseyk KadmielORCID, Lett Céline, Seibt Ulli
Abstract
Abstract. Carbonyl sulfide (COS) is an emerging tracer to constrain land photosynthesis
at canopy to global scales, because leaf COS and CO2 uptake processes
are linked through stomatal diffusion. The COS tracer approach requires
knowledge of the concentration normalized ratio of COS uptake to
photosynthesis, commonly known as the leaf relative uptake (LRU). LRU is
known to increase under low light, but the environmental controls over LRU
variability in the field are poorly understood due to scant leaf scale
observations. Here we present the first direct observations of LRU responses to
environmental variables in the field. We measured leaf COS and CO2
fluxes at a freshwater marsh in summer 2013. Daytime leaf COS and CO2
uptake showed similar peaks in the mid-morning and late afternoon separated
by a prolonged midday depression, highlighting the common stomatal control on
diffusion. At night, in contrast to CO2, COS uptake continued,
indicating partially open stomata. LRU ratios showed a clear relationship
with photosynthetically active radiation (PAR), converging to 1.0 at high
PAR, while increasing sharply at low PAR. Daytime integrated LRU (calculated
from daytime mean COS and CO2 uptake) ranged from 1 to 1.5, with a
mean of 1.2 across the campaign, significantly lower than the previously reported
laboratory mean value (∼ 1.6). Our results indicate two major
determinants of LRU – light and vapor deficit. Light is the primary driver
of LRU because CO2 assimilation capacity increases with light, while
COS consumption capacity does not. Superimposed upon the light response is a
secondary effect that high vapor deficit further reduces LRU, causing LRU
minima to occur in the afternoon, not at noon. The partial stomatal closure
induced by high vapor deficit suppresses COS uptake more strongly than
CO2 uptake because stomatal resistance is a more dominant component
in the total resistance of COS. Using stomatal conductance estimates, we show
that LRU variability can be explained in terms of different patterns of
stomatal vs. internal limitations on COS and CO2 uptake. Our findings
illustrate the stomata-driven coupling of COS and CO2 uptake during
the most photosynthetically active period in the field and provide an in situ
characterization of LRU – a key parameter required for the use of COS as a
photosynthetic tracer.
Funder
Division of Atmospheric and Geospace Sciences European Research Council
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
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