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通过 FeMg 改性生物炭同时稳定 Sb 和 As 复合污染土壤。

Simultaneous stabilization of Sb and As co-contaminated soil by FeMg modified biochar.

机构信息

State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, No. 19 Xinjiekouwai Street, Beijing 100875, China.

State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, No. 19 Xinjiekouwai Street, Beijing 100875, China.

出版信息

Sci Total Environ. 2022 Jul 15;830:154831. doi: 10.1016/j.scitotenv.2022.154831. Epub 2022 Mar 26.

Abstract

Currently, metalloid co-contamination, such as antimony and arsenic in soil, poses a serious threat to ecological stability and human health. Stabilization, a low-cost, effective, environmentally mild remediation strategy, shows enormous potential for mitigating environmental concerns. In this study, a novel FeMg modified porous biochar with different Fe/Mg proportions was prepared using the co-precipitation method to investigate the stabilizing efficiency in aqueous solutions and real soils. The optimal removal performance for Sb(V) and As(V) was the 1/3 mol ratio of Fe/Mg (3FMKBC), in which the maximum adsorption capacities of Sb(V) and As(V) were 296.9 and 195.4 mg/g, respectively. Detailed morphological and BET analyses suggested that BC effectively reduced Fe and Mg oxide agglomeration and endowed more interfacial active sites. Meanwhile, detailed adsorption behavior and surface analysis of 3FMKBC indicated that electrostatic interactions, hydrogen bonds, surface hydroxyl complexation, and ligand exchange induced by ≡C-O-Fe/Mg-OH dominated the stabilization process. Moreover, according to a 40-day incubation study in soil, 3FMKBC (1 wt. ml) decreased the available Sb (28.5% and 23.0%) and As (83.1% and 31.1%) extracted by toxicity characteristic leaching procedure (TCLP) and 0.1 M NaHPO, respectively. The above results indicated that 3FMKBC was an optimal amendment for limiting the migration and bioavailability of Sb and As. In addition, the sequential extraction and soil properties confirmed that 3FMKBC could realize the redistribution of resolved Sb and As between the soil solution and solid particles effectively, thereby converting the bioavailable/labile fraction of Sb and As to a more stabilized fraction. All results demonstrated that 3FMKBC could be a prospective material for Sb and As co-contamination stabilization.

摘要

目前,金属元素如土壤中的锑和砷的共污染对生态稳定性和人类健康构成了严重威胁。稳定化是一种低成本、有效且环境温和的修复策略,对于减轻环境问题具有巨大的潜力。在本研究中,使用共沉淀法制备了一种具有不同 Fe/Mg 比例的新型 FeMg 改性多孔生物炭(3FMKBC),以研究其在水溶液和实际土壤中的稳定效率。对于 Sb(V) 和 As(V) 的最佳去除性能是 Fe/Mg 摩尔比为 1/3(3FMKBC),其中 Sb(V) 和 As(V) 的最大吸附容量分别为 296.9 和 195.4 mg/g。详细的形态和 BET 分析表明,BC 有效地减少了 Fe 和 Mg 氧化物的团聚,并赋予了更多的界面活性位。同时,3FMKBC 的详细吸附行为和表面分析表明,静电相互作用、氢键、表面羟基络合和≡C-O-Fe/Mg-OH 诱导的配体交换主导了稳定化过程。此外,根据在土壤中进行的 40 天孵化研究,3FMKBC(1wt. ml)降低了毒性特征浸出程序(TCLP)和 0.1 M NaHPO 可提取的 Sb(28.5%和 23.0%)和 As(83.1%和 31.1%)的有效性。上述结果表明,3FMKBC 是限制 Sb 和 As 迁移和生物有效性的最佳改良剂。此外,顺序提取和土壤特性证实,3FMKBC 可以有效地实现 Sb 和 As 在土壤溶液和固体颗粒之间的重新分配,从而将 Sb 和 As 的生物可利用/不稳定部分转化为更稳定的部分。所有结果表明,3FMKBC 可能是 Sb 和 As 共污染稳定化的一种有前途的材料。

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