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模拟土壤有机铁氢氧化物复合材料作为同时污染土壤中镉和砷稳定化的合适改良剂。

Analog soil organo-ferrihydrite composites as suitable amendments for cadmium and arsenic stabilization in co-contaminated soils.

机构信息

College of Resources and Environment, Hunan Agricultural University, 410127 Changsha, China; College of Environmental Science and Engineering, Tongji University, 200092 Shanghai, China.

College of Resources and Environment, Hunan Agricultural University, 410127 Changsha, China.

出版信息

Sci Total Environ. 2023 Jun 15;877:162929. doi: 10.1016/j.scitotenv.2023.162929. Epub 2023 Mar 18.

Abstract

Remediation of CdAs co-contaminated soils has long been considered a difficult problem to solve, as Cd and As have distinctly different metallic characters. Amending contaminated soils with traditional single passivation materials may not always work well in the stabilization of both Cd and As. Here, we reported that analog soil organo-ferrihydrite composites made with either living or non-living organics (bacterial cells or humic acid) could achieve stabilization of both Cd and As in contaminated soils. BCR and Wenzel sequential extractions showed that organo-ferrihydrite, particularly at 1 wt% loading, shifted liable Cd and As to more stable phases. Organo-ferrihydrite amendments significantly (p < 0.05) increased soil urease, alkaline phosphatase and catalase enzyme activities. With organo-ferrihydrite amendments, the bioavailable fraction of Cd decreased to 35.3 % compared with the control (65.1 %), while the bioavailable As declined from 29.4 % to 12.4%. Soil pH, microbial community abundance and diversity were almost unaffected by organo-ferrihydrite. Ferrihydrite and organo fractions both contributed to direct Cd-binding, while the organo fraction probably maintained the Fe-bound As via lowering ferrihydrite phase transformation. Compared to pure ferrihydrite, organo-ferrihydrite composites performed better not only in reducing liable Cd and As, but also in maintaining soil quality and ecosystem functions. This study demonstrates the applications of organo-ferrihydrite composites in eco-friendly remediation of CdAs contaminated soils, and provides a new direction in selecting appropriate soil amendments.

摘要

修复 CdAs 复合污染土壤一直被认为是一个难以解决的问题,因为 Cd 和 As 具有明显不同的金属性质。用传统的单一钝化材料来改良污染土壤,对于稳定 Cd 和 As 并不总是有效。在这里,我们报告说,用活的或非活的有机物(细菌细胞或腐殖酸)制成的模拟土壤有机铁氢氧化物复合材料可以实现污染土壤中 Cd 和 As 的稳定。BCR 和 Wenzel 顺序提取表明,有机铁氢氧化物,特别是在 1wt%的负载下,将易变的 Cd 和 As 转化为更稳定的相。有机铁氢氧化物的添加显著(p < 0.05)增加了土壤脲酶、碱性磷酸酶和过氧化氢酶的活性。与有机铁氢氧化物的添加相比,Cd 的生物可利用部分从对照(65.1%)降低到 35.3%,而 As 的生物可利用部分从 29.4%降低到 12.4%。土壤 pH 值、微生物群落丰度和多样性几乎不受有机铁氢氧化物的影响。铁氢氧化物和有机物都对直接结合 Cd 有贡献,而有机物可能通过降低铁氢氧化物相转化来维持 Fe 结合的 As。与纯铁氢氧化物相比,有机铁氢氧化物复合材料不仅在减少易变的 Cd 和 As 方面表现更好,而且在维持土壤质量和生态系统功能方面也表现更好。本研究证明了有机铁氢氧化物复合材料在 CdAs 污染土壤的环保修复中的应用,并为选择合适的土壤改良剂提供了新的方向。

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