Changes in soil carbon (C): nitrogen (N): phosphorus (P) stoichiometric ratios have significant influences on biogeochemical cycles and ecosystem functions. Soil C, N, and P dynamics are closely related to climatic aridity and soil texture, two factors that are not easily separated at large spatial scale due to their geographic co-variation. While it is well understood that soil C, N, and P cycling are decoupled and soil C:N:P ratios change across climatic gradients, we know little about the role of soil texture in mediating such stoichiometric variation. Here, we examined the regional variation of soil C:N:P ratios with changes in aridity and soil texture based on observations from 57 sites along a 3000-km aridity transect in drylands of n...
PurposeDrylands account for 47.2% of land area and contain 15.5% of global carbon (C). However, the ...
The effects of environmental factors on topsoil nutrient distribution have been extensively discusse...
Understanding the spatial patterns and the driving factors of plant leaf and soil stoichiometry are ...
Changes in soil carbon (C): nitrogen (N): phosphorus (P) stoichiometric ratios have significant infl...
Agricultural land use profoundly alters soil carbon (C), nitrogen (N), and phosphorus (P) contents, ...
Determining large-scale patterns of plant elemental concentrations and stoichiometry along environme...
Plant carbon (C) and nitrogen (N) stoichiometry play an important role in the maintenance of ecosyst...
Background and aims: Variations in plant nitrogen (N) and phosphorus (P) concentrations and ratios h...
Controlled experiments have shown that global changes decouple the biogeochemical cycles of carbon (...
Aim The identification of stoichiometric flexibility is crucial for understanding carbon-nitrogen-ph...
The biogeochemical cycles of carbon (C), nitrogen (N) and phosphorus (P) are interlinked by primary ...
Grassland degradation resulting from desertification often alters the carbon (C), nitrogen (N) and p...
Coupled soil carbon (C), nitrogen (N), and phosphorus (P) cycles significantly influence biogeochemi...
Semi-arid and arid ecosystems are important for the global C cycle. Despite this, it remains unclear...
Changes in climatic conditions along geographical gradients greatly affect soil nutrient cycling pro...
PurposeDrylands account for 47.2% of land area and contain 15.5% of global carbon (C). However, the ...
The effects of environmental factors on topsoil nutrient distribution have been extensively discusse...
Understanding the spatial patterns and the driving factors of plant leaf and soil stoichiometry are ...
Changes in soil carbon (C): nitrogen (N): phosphorus (P) stoichiometric ratios have significant infl...
Agricultural land use profoundly alters soil carbon (C), nitrogen (N), and phosphorus (P) contents, ...
Determining large-scale patterns of plant elemental concentrations and stoichiometry along environme...
Plant carbon (C) and nitrogen (N) stoichiometry play an important role in the maintenance of ecosyst...
Background and aims: Variations in plant nitrogen (N) and phosphorus (P) concentrations and ratios h...
Controlled experiments have shown that global changes decouple the biogeochemical cycles of carbon (...
Aim The identification of stoichiometric flexibility is crucial for understanding carbon-nitrogen-ph...
The biogeochemical cycles of carbon (C), nitrogen (N) and phosphorus (P) are interlinked by primary ...
Grassland degradation resulting from desertification often alters the carbon (C), nitrogen (N) and p...
Coupled soil carbon (C), nitrogen (N), and phosphorus (P) cycles significantly influence biogeochemi...
Semi-arid and arid ecosystems are important for the global C cycle. Despite this, it remains unclear...
Changes in climatic conditions along geographical gradients greatly affect soil nutrient cycling pro...
PurposeDrylands account for 47.2% of land area and contain 15.5% of global carbon (C). However, the ...
The effects of environmental factors on topsoil nutrient distribution have been extensively discusse...
Understanding the spatial patterns and the driving factors of plant leaf and soil stoichiometry are ...