International audienceStomata play a central role in surface-atmosphere exchange by controlling the flux of water and CO2 between the leaf and the atmosphere. Representation of stomatal conductance (g(sw)) is therefore an essential component of models that seek to simulate water and CO2 exchange in plants and ecosystems. For given environmental conditions at the leaf surface (CO2 concentration and vapor pressure deficit or relative humidity), models typically assume a linear relationship between g(sw) and photosynthetic CO2 assimilation (A). However, measurement of leaf-level g(sw) response curves to changes in A are rare, particularly in the tropics, resulting in only limited data to evaluate this key assumption. Here, we measured the resp...
Stomata regulate CO2 uptake for photosynthesis and water loss through transpiration. The approaches ...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Prediction of stomatal conductance is a key element to relate and scale up leaf-level gas exchange p...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
Rising levels of atmospheric CO2 concentration (Cₐ) and simultaneous climate change profoundly affec...
Stomata play a key role in plant adaptation to changing environmental conditions as they control bot...
Rising levels of atmospheric CO2 concentration (Ca) and simultaneous climate change profoundly affec...
Optimization models of stomatal conductance (gs) attempt to explain observed stomatal behaviour in t...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
Stomatal conductance (g(s)) affects the fluxes of carbon, energy and water between the vegetated lan...
Stomata regulate CO2 uptake for photosynthesis and water loss through transpiration. The approaches ...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Prediction of stomatal conductance is a key element to relate and scale up leaf-level gas exchange p...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
Rising levels of atmospheric CO2 concentration (Cₐ) and simultaneous climate change profoundly affec...
Stomata play a key role in plant adaptation to changing environmental conditions as they control bot...
Rising levels of atmospheric CO2 concentration (Ca) and simultaneous climate change profoundly affec...
Optimization models of stomatal conductance (gs) attempt to explain observed stomatal behaviour in t...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
Stomatal conductance (g(s)) affects the fluxes of carbon, energy and water between the vegetated lan...
Stomata regulate CO2 uptake for photosynthesis and water loss through transpiration. The approaches ...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Prediction of stomatal conductance is a key element to relate and scale up leaf-level gas exchange p...