The interaction between nitrogen cycling and carbon sequestration is critical in predicting the consequences of anthropogenic increases in atmospheric CO2 (hereafter, Ca). The progressive N limitation (PNL) theory predicts that carbon sequestration in plants and soils with rising Ca may be constrained by the availability of nitrogen in many ecosystems. Here we report on the interaction between C and N dynamics during a four‐year field experiment in which an intact C3/C4 grassland was exposed to a gradient in Ca from 200 to 560 μmol/mol. There were strong species effects on decomposition dynamics, with C loss positively correlated and N mineralization negatively correlated with Ca for litter of the C3 forb Solanum dimidiatum, whereas decompo...
Grasslands are globally widespread and capable of storing large amounts of carbon (C) in soils, and ...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...
The interaction between nitrogen cycling and carbon sequestration is critical in predicting the cons...
The capability of terrestrial ecosystems to sequester carbon (C) plays a critical role in regulating...
Elevated atmospheric CO2 frequently increases plant production and concomitant soil C inputs, which ...
The atmospheric concentration of the greenhouse gas CO<sub>2 </sub>is rising and may stimulate plant...
Grasslands are globally widespread and capable of storing large amounts of carbon (C) in soils, and ...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
The atmospheric concentration of the greenhouse gas CO<sub>2 </sub>is rising and may stimulate plant...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO2) have included in re...
The nitrogen (N) cycle has the potential to regulate climate change through its influence on carbon ...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO<sub>2</sub>) have inc...
Grasslands are globally widespread and capable of storing large amounts of carbon (C) in soils, and ...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...
The interaction between nitrogen cycling and carbon sequestration is critical in predicting the cons...
The capability of terrestrial ecosystems to sequester carbon (C) plays a critical role in regulating...
Elevated atmospheric CO2 frequently increases plant production and concomitant soil C inputs, which ...
The atmospheric concentration of the greenhouse gas CO<sub>2 </sub>is rising and may stimulate plant...
Grasslands are globally widespread and capable of storing large amounts of carbon (C) in soils, and ...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
The atmospheric concentration of the greenhouse gas CO<sub>2 </sub>is rising and may stimulate plant...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
Elevated atmospheric CO2 may alter decomposition rates through changes in plant material quality and...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO2) have included in re...
The nitrogen (N) cycle has the potential to regulate climate change through its influence on carbon ...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO<sub>2</sub>) have inc...
Grasslands are globally widespread and capable of storing large amounts of carbon (C) in soils, and ...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...
It is uncertain whether elevated atmospheric CO2 will increase C storage in terrestrial ecosystems w...