生物炭
砷
镉
环境修复
环境科学
环境化学
土壤污染
污染
土壤水分
化学
土壤科学
生态学
生物
有机化学
热解
作者
Beilei Wei,Dongliang Zhang,Paramsothy Jeyakumar,Lukáš Trakal,Hailong Wang,Keke Sun,Ying Wei,Xiao‐Qi Zhang,Huarong Ling,Shijie He,Hanqian Wu,Zhigang Huang,Chong Li,Ziting Wang
标识
DOI:10.1016/j.jhazmat.2024.133866
摘要
The escalating problem of compound arsenic (As) and cadmium (Cd) contamination in agricultural soils necessitates the urgency for effective remediation strategies. This is compounded by the opposing geochemical behaviors of As and Cd in soil, and the efficacy of biochar treatment remains unclear. This pioneering study integrated 3,780 observation pairs referred from 92 peer-reviewed articles to investigate the impact of iron-modified biochar on As and Cd responses across diverse soil environments. Regarding the treatments, 1) biochar significantly decreased the exchangeable and acid-soluble fraction of As (AsF1, 20.9%) and Cd (CdF1, 24.0%) in paddy fields; 2) iron-modified biochar significantly decreased AsF1 (32.0%) and CdF1 (27.4%); 3) iron-modified biochar in paddy fields contributed to the morphological changes in As and Cd, mainly characterized by a decrease in AsF1 (36.5%) and CdF1 (36.3%) and an increase in the reducible fraction of As (19.7%) and Cd (39.2%); and 4) iron-modified biochar in paddy fields increased As (43.1%) and Cd (53.7%) concentrations in the iron plaque on root surfaces. We conclude that iron-modified biochar treatment of paddy fields is promising in remediating As and Cd contamination by promoting the formation of iron plaque. Arsenic (As) and cadmium (Cd) are toxic metals that can accumulate in the human body via the food chain, causing permanent disorders. Since As and Cd have opposite chemical reactions, it is difficult to reduce the mobility of both elements in the soil at the same time by changing the soil pH or applying an amendment. This study quantitatively elucidates the response of As and Cd to iron-modified and unmodified biochar in soil-plant systems in paddy and uplands fields, demonstrating that the formation of iron plaque effectively prevents the transfer of As and Cd from soil to plants through roots.
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