Quangang You
Biographic Data
| ID | 7998895 |
|---|---|
| NAME | Quangang You |
| GIVEN NAMES | Quangang |
| FAMILY NAME | You |
| SIGNATURE | YOU Q |
| AFFILIATIONS | Chinese Academy of Sciences |
| VERIFIED | No |
| TOTAL WORKS | 3 |
| TOTAL CITATIONS | 0 |
| AUTHOR COUNT | 3 |
| EDITOR COUNT | 0 |
| FIRST PUBLICATION YEAR | 2017 |
| LATEST PUBLICATION YEAR | 2021 |
| H-INDEX | 0 |
Plant community changes determine the vegetation and soil δ 13 C and δ 15 N enrichment in degraded alpine grassland
δ 13 C and δ 15 N are extensively used to understand the biogeochemical mechanisms that moderate ecosystem carbon (C) and nitrogen (N) processes. Little is known about the responses of δ 13 C and δ 15 N to alpine grassland degradation on the Qinghai‐Tibetan Plateau (QTP), which prevents a full understanding of degradation‐induced changes in C and N cycling there. We investigated the vegetation δ 13 C and δ 15 N, soil δ 13 C and δ 15 N, soil prope…
Plant community change mediated heterotrophic respiration increase explains soil organic carbon loss before moderate degradation of alpine meadow
Alpine meadows on the Qinghai‐Tibet Plateau (QTP) store a huge amount of plant and soil carbon (C). The degradation of the alpine meadow has led to a significant loss of soil organic C (SOC), which endangers its weak C sink. The change in heterotrophic respiration was hypothesized as one of the primary biological processes for the SOC loss alongside the degradation of alpine meadow. However, little is known about how land degradation impacts R h …
Warming-induced shift towards forbs and grasses and its relation to the carbon sequestration in an alpine meadow
Global warming is often associated with changes in abiotic factors and the community composition across alpine ecosystems. However, the way that an altered community dynamics affects the ecosystem carbon (C) balance remains unclear. A warming experiment was initiated in 2010 to assess the potential impacts of warming-induced changes in the community composition and how these changes affect the C balance in mountain meadows located in the permafro…
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Warming-induced shift towards forbs and grasses and its relation to the carbon sequestration in an alpine meadow
Global warming is often associated with changes in abiotic factors and the community composition across alpine ecosystems. However, the way that an altered community dynamics affects the ecosystem carbon (C) balance remains unclear. A warming experiment was initiated in 2010 to assess the potential impacts of warming-induced changes in the community composition and how these changes affect the C balance in mountain meadows located in the permafro…
Plant community changes determine the vegetation and soil δ 13 C and δ 15 N enrichment in degraded alpine grassland
δ 13 C and δ 15 N are extensively used to understand the biogeochemical mechanisms that moderate ecosystem carbon (C) and nitrogen (N) processes. Little is known about the responses of δ 13 C and δ 15 N to alpine grassland degradation on the Qinghai‐Tibetan Plateau (QTP), which prevents a full understanding of degradation‐induced changes in C and N cycling there. We investigated the vegetation δ 13 C and δ 15 N, soil δ 13 C and δ 15 N, soil prope…
Plant community change mediated heterotrophic respiration increase explains soil organic carbon loss before moderate degradation of alpine meadow
Alpine meadows on the Qinghai‐Tibet Plateau (QTP) store a huge amount of plant and soil carbon (C). The degradation of the alpine meadow has led to a significant loss of soil organic C (SOC), which endangers its weak C sink. The change in heterotrophic respiration was hypothesized as one of the primary biological processes for the SOC loss alongside the degradation of alpine meadow. However, little is known about how land degradation impacts R h …
Biology (3 works) · Climate change and permafrost (3 works) · Ecology (3 works) · Environmental Science (3 works) · Grassland (3 works) · Peatlands and Wetlands Ecology (3 works) · Agronomy (2 works) · Chemistry (2 works) · Ecological succession (2 works) · Ecosystem (2 works)