The contribution of increased global soil salinity to changes in inorganic carbon

成果类型:
Article
署名作者:
Jiang, Xiaofang; Xue, Xian
署名单位:
Chinese Academy of Sciences; Northwest Institute of Eco-Environment & Resources, CAS; Chinese Academy of Sciences; Northwest Institute of Eco-Environment & Resources, CAS; Qinghai Normal University
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2522643123
发表日期:
2026-01-27
页码:
e2522643123
关键词:
electrical conductivity salinization soil inorganic carbon subregion DRYLAND SALINITY NET ECOSYSTEM CO2 EXCHANGE sequestration fluxes water AMELIORATION reduction chemistry mechanism
摘要:
Soil salinization poses a serious environmental challenge, but the impact of global salinity depth, combined with subregional classification (such as soil type, land use, climate, geomorphology, and soil texture) which helps address spatial heterogeneity, we obtain relatively accurate global distribution data for EC (Electrical Conductivity) and SIC. EC of 0 to 40 cm layer positively influences SIC in most taxonomic subregions, which may be due to the inorganic CO2 absorption influenced by pH and salinity. EC of 80 to 100 cm layer sometimes negatively influences SIC due to the increase of soil depth. When EC is below 4 dS/m, EC often positively influences SIC. When EC increases by 2 to 4 dS/m, the mean global SIC in 0 to 20, 20 to 40, and 80 to 100 cm layers increases from 66.15, 78.75, and 117.39 to 174.47 to 190.38, 132.76 to 154.98, and 149.14 to 161.37 g/kg, respectively. The increase is relatively high but similar overall, which deserves high attention. These findings elucidate the dynamics of carbon-salt coupling in the soil-atmosphere-water system, offering pivotal scientific insights for carbon-neutrality strategies.
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