Remediation mechanism of Cu, Zn, As, Cd, and Pb contaminated soil by biochar-supported nanoscale zero-valent iron and its impact on soil enzyme activity

生物炭 化学 环境修复 吸附 零价铁 环境化学 纳米尺度 土壤修复 环境科学 土壤污染 土壤水分 材料科学 污染 纳米技术 有机化学 土壤科学 生态学 生物 热解
作者
Peipei Song,Wenjing Ma,Xiaoyu Gao,Shiyun Ai,Jun Wang,Haibo Liu
出处
期刊:Journal of Cleaner Production [Elsevier]
卷期号:378: 134510-134510 被引量:52
标识
DOI:10.1016/j.jclepro.2022.134510
摘要

Recently, heavy metal contaminated soil has been widespread concerned. Herein, rice straw-derived biochar-supported nanoscale zero-valent iron (nZVI@BC) composite was prepared and characterized, and its remediation performance in Cu, Zn, As, Cd, and Pb contaminated soil were evaluated. nZVI@BC demonstrated better immobilization effect on multiple heavy metals than biochar, and the residual component of Cu, Zn, As, Cd, and Pb increased by 10.27%, 7.18%, 7.44%, 9.26%, and 12.75%, respectively. After nZVI@BC treatment, the soil pH, the available iron, cation exchange capacity, total organic carbon, and dissolved organic carbon increased. Besides, soil enzyme (catalase, urease, and fluorescein diacetate hydrolase) activities significantly increased, especially, the catalase activity was doubled. Furthermore, the immobilization mechanism was explored, including surface adsorption, electrostatic attraction, ion exchange, coprecipitation, oxidation-reduction, and complexation. Additionally, the adsorption sites of Pb and Cu were more competitive, and As synergistically promoted the adsorption of Pb, forming a ternary surface complex PbFeAsO 4 OH. Therefore, it well demonstrates that nZVI@BC may be a potential technology for remediation of multiple heavy metals contaminated soil. • Multiple heavy metals were successfully immobilized by nZVI@BC. • The remediation performance and soil enzyme activity were evaluated. • The immobilization mechanism was deeply explored. • Pb and Cu were more competitive for adsorption sites than others. • As synergistically promoted Pb adsorption.
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