Free-Air CO2 Enrichment (FACE) experiments have demonstrated increased plant productivity in response to elevated (e)CO2, with the magnitude of responses related to soil nutrient status. Whilst understanding nutrient constraints on productivity responses to eCO2 is crucial to predicting carbon uptake and storage, very little is known about how eCO2 affects nutrient cycling in phosphorus (P)-limited ecosystems. Our study investigates eCO2 effects on soil N and P dynamics at the EucFACE experiment in Western Sydney over an 18 month period. Three ambient and three eCO2 (+150 ppm) FACE rings were installed in a P-limited, mature Cumberland Plain Eucalyptus woodland. Levels of plant accessible nutrients, evaluated using ion exchange resins, were...
Limited phosphorus (P) availability in Australia's highly weathered soils may constrain an increase ...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...
Background and aims: Rhizosphere processes are integral to carbon sequestration by terrestrial ecosy...
Forest ecosystems contribute substantially to biogeochemical processes on the earth. Understanding t...
Elevated atmospheric carbon dioxide (eCO₂) associated with climate change increases plant production...
Rising atmospheric CO2 stimulates photosynthesis and productivity of forests, offsetting CO2 emissio...
Projections of future climate are highly sensitive to uncertainties regarding carbon (C) uptake and ...
Aims: Given the key functional role of understorey plant communities and the substantial extent of f...
Sustained increased productivity of trees growing in elevated CO2 depends in part on their stoichiom...
Rising atmospheric CO2 has stimulated plant productivity, with terrestrial ecosystems currently abso...
Despite knowledge of the interaction between climate change factors significant uncertainty exists c...
Elevated atmospheric [CO2] (eCO2) is currently altering nutrient cycling and availability in ecosyst...
Rising atmospheric CO2 stimulates photosynthesis and productivity of forests, offsetting CO2 emissio...
Fine roots are a key component of carbon and nutrient dynamics in forest ecosystems. Rising atmosphe...
Limited phosphorus (P) availability in Australia's highly weathered soils may constrain an increase ...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...
Background and aims: Rhizosphere processes are integral to carbon sequestration by terrestrial ecosy...
Forest ecosystems contribute substantially to biogeochemical processes on the earth. Understanding t...
Elevated atmospheric carbon dioxide (eCO₂) associated with climate change increases plant production...
Rising atmospheric CO2 stimulates photosynthesis and productivity of forests, offsetting CO2 emissio...
Projections of future climate are highly sensitive to uncertainties regarding carbon (C) uptake and ...
Aims: Given the key functional role of understorey plant communities and the substantial extent of f...
Sustained increased productivity of trees growing in elevated CO2 depends in part on their stoichiom...
Rising atmospheric CO2 has stimulated plant productivity, with terrestrial ecosystems currently abso...
Despite knowledge of the interaction between climate change factors significant uncertainty exists c...
Elevated atmospheric [CO2] (eCO2) is currently altering nutrient cycling and availability in ecosyst...
Rising atmospheric CO2 stimulates photosynthesis and productivity of forests, offsetting CO2 emissio...
Fine roots are a key component of carbon and nutrient dynamics in forest ecosystems. Rising atmosphe...
Limited phosphorus (P) availability in Australia's highly weathered soils may constrain an increase ...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...
Elevated CO2 affects C cycling processes which in turn can influence the nitrogen (N) and phosphorus...