Rising levels of atmospheric CO2 concentration (Ca) and simultaneous climate change profoundly affect plant physiological performance while challenging our ability to estimate vegetation–atmosphere fluxes. To predict rates of water and carbon exchange between vegetation and the atmosphere, we require a formulation for stomatal conductance (gs) that captures the multidimensional response of stomata to changing environmental conditions. The unified stomatal optimization (USO) theory provides a formulation for gs with the ability to predict the response of gs to novel environmental conditions such as elevated Ca (eCa), warmer temperatures and/or changing water availability. We tested for the effect of eCa and seasonally varying climate on stom...
Plant physiological adaptation to the global rise in atmospheric CO 2 concentration (CO2) is identif...
Rising atmospheric concentrations of CO2 (Ca) can reduce stomatal conductance and transpiration rate...
Rising atmospheric concentrations of CO 2 (C a) can reduce stomatal conductance and transpiration ra...
Rising levels of atmospheric CO2 concentration (Ca) and simultaneous climate change profoundly affec...
Rising levels of atmospheric CO2 concentration (Cₐ) and simultaneous climate change profoundly affec...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
The linkage of stomatal behaviour with photosynthesis is critical to understanding water and carbon ...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Stomatal conductance shapes the exchange of water and carbon of vegetated land surfaces. Previous st...
Earth is undergoing anthropogenic induced climate change yet it is unclear what the reaction of plan...
Models of stomatal conductance (gs) are based on coupling between gs and CO2 assimilation (Anet), an...
Rising atmospheric concentrations of CO2 (Ca) can reduce stomatal conductance and transpiration rate...
Elevated atmospheric CO2 concentration is expected to increase leaf CO2 assimilation rates, thus pro...
Plant physiological adaptation to the global rise in atmospheric CO 2 concentration (CO2) is identif...
Rising atmospheric concentrations of CO2 (Ca) can reduce stomatal conductance and transpiration rate...
Rising atmospheric concentrations of CO 2 (C a) can reduce stomatal conductance and transpiration ra...
Rising levels of atmospheric CO2 concentration (Ca) and simultaneous climate change profoundly affec...
Rising levels of atmospheric CO2 concentration (Cₐ) and simultaneous climate change profoundly affec...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
The linkage of stomatal behaviour with photosynthesis is critical to understanding water and carbon ...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Stomatal conductance shapes the exchange of water and carbon of vegetated land surfaces. Previous st...
Earth is undergoing anthropogenic induced climate change yet it is unclear what the reaction of plan...
Models of stomatal conductance (gs) are based on coupling between gs and CO2 assimilation (Anet), an...
Rising atmospheric concentrations of CO2 (Ca) can reduce stomatal conductance and transpiration rate...
Elevated atmospheric CO2 concentration is expected to increase leaf CO2 assimilation rates, thus pro...
Plant physiological adaptation to the global rise in atmospheric CO 2 concentration (CO2) is identif...
Rising atmospheric concentrations of CO2 (Ca) can reduce stomatal conductance and transpiration rate...
Rising atmospheric concentrations of CO 2 (C a) can reduce stomatal conductance and transpiration ra...