Models of vegetation function are widely used to predict the effects of climate change on carbon, water and nutrient cycles of terrestrial ecosystems, and their feedbacks to climate. Stomatal conductance, the process that governs plant water use and carbon uptake, is fundamental to such models. In this paper, we reconcile two long-standing theories of stomatal conductance. The empirical approach, which is most commonly used in vegetation models, is phenomenological, based on experimental observations of stomatal behaviour in response to environmental conditions. The optimal approach is based on the theoretical argument that stomata should act to minimize the amount of water used per unit carbon gained. We reconcile these two approaches by s...
Stomatal conductance links plant water use and carbon uptake, and is a critical process for the land...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
Stomata play a key role in plant adaptation to changing environmental conditions as they control bot...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
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...
Stomatal conductance (gs) is a key land-surface attribute as it links transpiration, the dominant co...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Stomatal conductance links plant water use and carbon uptake, and is a critical process for the land...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
Stomata play a key role in plant adaptation to changing environmental conditions as they control bot...
Models of vegetation function are widely used to predict the effects of climate change on carbon, wa...
International audienceStomata play a central role in surface-atmosphere exchange by controlling the ...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
Stomatal conductance (gs) affects the fluxes of carbon, energy and water between the vegetated land ...
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...
Stomatal conductance (gs) is a key land-surface attribute as it links transpiration, the dominant co...
Optimal stomatal theory predicts that stomata operate to maximise photosynthesis (Anet) and minimise...
Stomatal conductance links plant water use and carbon uptake, and is a critical process for the land...
Background and Aims: Studies have indicated that plant stomatal conductance (gs) decreases in respon...
Stomata play a key role in plant adaptation to changing environmental conditions as they control bot...