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利用机械活化废渣改良污染土壤同步固定多种重金属

Simultaneous immobilization of multiple heavy metals in polluted soils amended with mechanical activation waste slag.

作者信息

Ma Mengyu, Ha Zhihao, Xu Xiangqun, Lv Chenyang, Li Changyi, Du Dongyun, Chi Ruan

机构信息

Hubei Novel Reactor & Green Chemical Technology Key Laboratory, Key Laboratory for Green Chemical Process of Ministry of Education, School of Chemistry and Environmental Engineering, Wuhan Institute of Technology, Wuhan 430074, China; College of Resources and Environmental Science, South-Central Minzu University, Wuhan 430074, China; Engineering Research Center for Heavy Metal Pollution Control of Hubei Province, College of Resources and Environmental Science, South-Central Minzu University, Wuhan 430074, China.

College of Resources and Environmental Science, South-Central Minzu University, Wuhan 430074, China; Engineering Research Center for Heavy Metal Pollution Control of Hubei Province, College of Resources and Environmental Science, South-Central Minzu University, Wuhan 430074, China.

出版信息

Sci Total Environ. 2023 Oct 10;894:164730. doi: 10.1016/j.scitotenv.2023.164730. Epub 2023 Jun 10.

Abstract

Heavy metal soil contamination has become an increasingly serious problem in industrial development. However, industrial byproducts used for remediation are one aspect of green remediation that can contribute to sustainable practices in waste recycling. In this study, electrolytic manganese slags (EMS) were mechanically activated and modified into a passivator (M-EMS), and the heavy metal adsorption performance of M-EMS, heavy metal passivation ability in soil, dissolved organic matter (DOM) change and its effect on the microbial community structure of soil were investigated. The findings revealed that the maximum adsorption capacities of As(V), Cd, Cu and Pb were 76.32 mg/g, 301.41 mg/g, 306.83 mg/g and 826.81 mg/g, respectively, indicating that M-EMS demonstrated remarkable removal performance for different heavy metals. The Langmuir model fits Cd, Cu and Pb better than the Freundlich model, and monolayer adsorption is the main process. Surface complexation played a major role in the As(V) adsorption's on the surface of metal oxides in M-EMS. The passivation effect was ranked as Pb > Cr > As>Ni > Cd > Cu, with the highest passivation rate of 97.59 % for Pb, followed by Cr (94.76 %), then As (71.99 %), Ni (65.17 %), Cd (61.44 %), and the worst one was Cu (25.17 %). In conclusion, the passivator has the effect of passivation for each heavy metal. The addition of passivating agent can enhance the diversity of microorganisms. Then it can change the dominant flora and induce the passivation of heavy metals through microorganisms. XRD, FTIR, XPS and the microbial community structure of soil indicated that M-EMS can stabilize heavy metals in contaminated soils through four main mechanisms: ion exchange, electrostatic adsorption, complex precipitation and the microbially induced stabilization. The results of this study may provide new insights into the ecological remediation of multiple heavy-metal-contaminated soils and water bodies and research on the strategy of waste reduction and harmlessness by using EMS-based composites in combination with heavy metals in soil.

摘要

在工业发展过程中,重金属土壤污染已成为一个日益严重的问题。然而,利用工业副产品进行修复是绿色修复的一个方面,有助于实现废物回收利用的可持续做法。在本研究中,对电解锰渣(EMS)进行机械活化并改性制成钝化剂(M-EMS),并研究了M-EMS对重金属的吸附性能、在土壤中的重金属钝化能力、溶解性有机物(DOM)的变化及其对土壤微生物群落结构的影响。研究结果表明,M-EMS对As(V)、Cd、Cu和Pb的最大吸附容量分别为76.32 mg/g、301.41 mg/g、306.83 mg/g和826.81 mg/g,表明M-EMS对不同重金属具有显著的去除性能。Langmuir模型对Cd、Cu和Pb的拟合效果优于Freundlich模型,且以单层吸附为主。表面络合作用在M-EMS中金属氧化物表面对As(V)的吸附过程中起主要作用。钝化效果排序为Pb>Cr>As>Ni>Cd>Cu,其中Pb的最高钝化率为97.59%,其次是Cr(94.76%),然后是As(71.99%)、Ni(65.17%)、Cd(61.44%),最差的是Cu(25.17%)。总之,该钝化剂对各重金属均有钝化效果。钝化剂的添加能增强微生物的多样性。进而改变优势菌群,并通过微生物诱导重金属钝化。XRD、FTIR、XPS以及土壤微生物群落结构表明,M-EMS可通过离子交换、静电吸附、络合沉淀和微生物诱导稳定化四种主要机制使污染土壤中的重金属稳定化。本研究结果可为多种重金属污染土壤和水体的生态修复以及利用基于EMS的复合材料结合土壤中的重金属进行减废和无害化策略研究提供新的见解。

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