4.7 Article

Agricultural land use change impacts soil CO2 emission and its C-13-isotopic signature in central China

期刊

SOIL & TILLAGE RESEARCH
卷 177, 期 -, 页码 105-112

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.still.2017.11.017

关键词

Afforestation; Stable carbon isotope; Soil respiration

资金

  1. National Natural Science Foundation of China [31470557, 31270550]
  2. Chinese Academy of Sciences [XDB15010200]

向作者/读者索取更多资源

Land use change has been widely considered as a key driver of global carbon (C) dynamics. However, the impact of agricultural land use change on soil respiration and its C-13-isotopic signature of CO2 are not fully understood. Therefore, we conducted a field experiment to investigate the seasonal variation of soil CO2 flux and its C-13-isotopic signature and their relationships with biotic factors and abiotic factors under land use conversion from croplands to afforested land (woodland and shrubland) after 30 years. Measurement of CO2 flux was conducted once a month for a whole year. The results showed that the conversion cropland to afforested land significantly increased soil CO2 flux and lowered the delta C-13 of soil CO2. The soil CO2 flux showed similar seasonal patterns among land use types with the highest (994.87 mg m(-2) h(-1)) in summer and the lowest (25.53 mg m(-2) h(-1)) in winter. The soil CO2 flux was positively related to soil organic C and labile C of topsoil (0-10 cm), as well as soil temperature, whereas the delta C-13 of soil CO2 emission was positively correlated with the delta C-13 of microbial biomass and negatively correlated with soil temperature. Overall, our results reveal that subject to long-term land use change, soil CO2 fluxes significantly increase in afforested land due to improved availability of soil C, and its C-13-isotopic signature are strongly related to isotope signature of plant litter inputs.

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