[1] Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers of carbon sequestration, the geographical spread and magnitude of this sink are however hotly debated. Photosynthesis determines the total C uptake of terrestrial ecosystems and is a major flux of the global C balance. We contribute to the discussion on enhanced C sequestration by analyzing the influence of nitrogen (N) deposition on photosynthetic capacity (Amax) of forest canopies. Eddy covariance measurements of net exchange of carbon provide estimates of gross primary production, from which Amax is derived with a novel approach. Canopy Amax is combined with modeled N deposition, environmental variables and stand characteristics to study ...
Atmospheric deposition of reactive nitrogen (N) can have a strong influence on patterns of carbon (C...
The effects of atmospheric nitrogen deposition (N-dep) on carbon (C) sequestration in forests have o...
The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems...
[1] Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers...
Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers of ...
Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers of ...
Elevated nitrogen (N) deposition may increase net primary productivity in N-limited terrestrial ecos...
In many forest ecosystems, nitrogen (N) deposition enhances plant uptake of carbon dioxide, thus red...
Nitrogen (N) cycle dynamics and N deposition play an important role in determining the terrestrial b...
The carbon to nitrogen response of forest ecosystems depends on the possible occurrence of nitrogen ...
In a recent study, Magnani et al. report how atmospheric nitrogen deposition drives stand-lifetime n...
Nitrogen (N) is an essential nutrient for plant growth that constrains the fixation and storage of c...
The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems...
Atmospheric deposition of reactive nitrogen (N) can have a strong influence on patterns of carbon (C...
The effects of atmospheric nitrogen deposition (N-dep) on carbon (C) sequestration in forests have o...
The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems...
[1] Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers...
Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers of ...
Global terrestrial carbon (C) sequestration has increased over the last few decades. The drivers of ...
Elevated nitrogen (N) deposition may increase net primary productivity in N-limited terrestrial ecos...
In many forest ecosystems, nitrogen (N) deposition enhances plant uptake of carbon dioxide, thus red...
Nitrogen (N) cycle dynamics and N deposition play an important role in determining the terrestrial b...
The carbon to nitrogen response of forest ecosystems depends on the possible occurrence of nitrogen ...
In a recent study, Magnani et al. report how atmospheric nitrogen deposition drives stand-lifetime n...
Nitrogen (N) is an essential nutrient for plant growth that constrains the fixation and storage of c...
The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems...
Atmospheric deposition of reactive nitrogen (N) can have a strong influence on patterns of carbon (C...
The effects of atmospheric nitrogen deposition (N-dep) on carbon (C) sequestration in forests have o...
The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems...