固碳
硅灰石
风化作用
无机碳总量
二氧化碳
环境化学
土壤pH值
碳酸盐
碳酸氢盐
土壤水分
化学
溶解
碳纤维
土壤碳
溶解有机碳
碳酸盐矿物
阳离子交换容量
土壤生产函数
土壤科学
总有机碳
土壤酸化
土工试验
钙质的
碳酸盐岩
土壤化学
大块土
成土作用
碳酸
无机化学
土层
矿物学
碳循环
矿物
碳酸钙
作者
Chenxia Su,Ronghua Kang,Charles T. Driscoll,Weixing Zhu,Daniel S. Goll,Wentao Huang,Ang Wang,Yunting Fang
标识
DOI:10.1021/acs.est.6c05139
摘要
Enhanced rock weathering (ERW) is a promising carbon dioxide removal (CDR) strategy, yet current estimates commonly assume that cation release directly reflects CO2 sequestration. We investigated wollastonite weathering and carbon sequestration in agricultural soils spanning a wide pH range using column experiments. Weathering decreased with increasing soil pH, with 63%, 48%, and 30% of wollastonite dissolved at pH 4, 6, and 8, respectively. However, CDR estimated from cation release exceeded measured inorganic carbon formation by 1.5-3.1 times, with the largest discrepancy in acidic soil. Charge balance analysis showed that, under acidic conditions, released cations were accompanied by strong acid anions and decreases in exchangeable H+/Al3+, rather than by bicarbonate formation, resulting in only 0.63-1.30 mol CO2 fixed per mol divalent cation released, well below the theoretical value of 2.0. Wollastonite also enhanced CO2 emissions in acidic soil through native carbonate dissolution and soil organic carbon (SOC) mineralization. After accounting for these emissions, net CDR ranged from 0.06 to 0.46 g C kg-1 soil and increased with soil pH. These results demonstrate that soil pH, through charge balance, rock carbonate dissolution, and SOC mineralization, regulates ERW efficiency and should be incorporated into CDR accounting to avoid substantial overestimation of carbon sequestration potential.
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