环境科学
土壤碳
生态系统
陆地生态系统
固碳
土壤科学
碳循环
碳纤维
无机碳总量
土壤水分
土层
气候变化
矿化(土壤科学)
降水
偏移量(计算机科学)
碳汇
自行车
水文学(农业)
总有机碳
溶解有机碳
农学
土壤分类
大气碳循环
初级生产
土壤有机质
堆积密度
耕作
全球变化
大气科学
二氧化碳
作者
Andong Cai,Tianfu Han,Zhenghu Zhou,Kailou Liu,X Xu,Pete Smith,Qingzhu Gao,YJ Li,Minggang Xu
标识
DOI:10.1073/pnas.2531214123
摘要
Soil inorganic carbon (SIC) constitutes half of the terrestrial carbon pool and exerts a profound influence on global carbon cycling and ecosystem multifunctionality. Contrary to the view of millennial-scale stability, SIC in cropland are undergoing rapid changes due to intense anthropogenic disturbances. However, the direction, magnitude, and drivers of SIC changes over recent decades remain poorly quantified, especially in entire soil profile. Here, we quantified changes in SIC across a 1-m soil profile across China’s upland croplands at 204 matched sites (4,305 soil profiles) in 1980s and 2023, relocated using legacy site descriptions and field verification. Over the past four decades, the mean of surface SIC density (0 to 40 cm) depleted by 0.68 kg m −2 , primarily associated with increased precipitation and soil acidification, whereas subsurface SIC density (40 to 100 cm) increased by 0.49 kg m −2 , attributed to carbon inputs and an increase in soil pH. Subsurface SIC accumulation amounted to 0.48 0.39 0.58 Pg, offsetting 44% surface losses within the upper 1 m soil profile. Importantly, this offset reflects vertical redistribution of SIC rather than net carbon sequestration at the ecosystem scale. These findings highlight the need to incorporate depth-resolved SIC dynamics into terrestrial carbon accounting and climate projections.
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