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铁碳材料增强的 PCB 污染土壤电动修复。

Iron-carbon material enhanced electrokinetic remediation of PCBs-contaminated soil.

机构信息

Department of Environmental Science, Zhejiang University, Hangzhou, 310058, China.

Department of Environmental Science, Zhejiang University, Hangzhou, 310058, China; Zhejiang Provincial Key Laboratory of Organic Pollution Process and Control, Zhejiang University, Hangzhou, 310058, China.

出版信息

Environ Pollut. 2021 Dec 1;290:118100. doi: 10.1016/j.envpol.2021.118100. Epub 2021 Sep 1.

DOI:10.1016/j.envpol.2021.118100
PMID:34492528
Abstract

The high toxicity and persistence of polychlorinated biphenyls (PCBs) in the environment demands the development of effective remediation for PCBs-contaminated soils. In this study, electrokinetic (EK) remediation integrated with iron-carbon material (Fe/C) was established and used to remediate PCB28 (1 mg kg) contaminated soil under a voltage gradient of 1 V cm. Effects of Fe/C dosage, soil type, and remediation time were investigated. The operational condition was optimized as 4 g kg Fe/C, yellow soil, and 14 d-remediation, achieving PCB28 removal efficiency of 58.6 ± 8.8% and energy utilization efficiency of 146.5. Introduction of EK-Fe/C did not significantly affect soil properties except for slight soil moisture content increase and total Fe content loss. Soil electrical conductivity exhibited an increasing trend from anode to cathode attributed to EK-induced electromigration and electroosmosis. EK accelerated the corrosion and consumption of reactive Fe/FeC in Fe/C by generating acid condition. Fe/C in turn effectively prevented EK-induced soil acidification and maintained soil neutral to weak alkaline condition. A synergistic effect between EK and Fe/C was revealed by the order of PCB28 removal efficiency-EK-Fe/C (58.6 ± 8.8%) > EK (37.7 ± 1.6%) > Fe/C (6.8 ± 5.0%). This could be primarily attributed to EK and Fe/C enhanced Fenton reaction, where EK promoted Fe/C dissolution and HO generation. In addition to oxidation by Fenton reaction generated ·OH, EK-mediated electrochemical oxidation, Fe/C-induced reduction and migration of Fe/C adsorbed PCBs were all significant contributors to PCB28 removal in the EK-Fe/C system. These findings suggest that the combination of EK and Fe/C is a promising technology for remediation of organics-contaminated soil.

摘要

多氯联苯(PCBs)在环境中的高毒性和持久性要求开发有效的修复方法来处理 PCBs 污染土壤。本研究建立了电动(EK)修复与铁碳材料(Fe/C)集成的方法,并在 1 V cm 的电压梯度下用于修复 PCB28(1 mg kg)污染土壤。考察了 Fe/C 用量、土壤类型和修复时间的影响。优化操作条件为 4 g kg Fe/C、黄壤和 14 天修复,实现 PCB28 去除效率为 58.6±8.8%,能量利用率为 146.5。引入 EK-Fe/C 除了略微增加土壤水分含量和损失总铁含量外,对土壤性质没有显著影响。土壤电导率从阳极到阴极呈上升趋势,这归因于 EK 诱导的电迁移和电渗流。EK 通过产生酸性条件加速 Fe/C 中反应性 Fe/FeC 的腐蚀和消耗。Fe/C 反过来通过有效防止 EK 引起的土壤酸化并维持土壤中性至弱碱性条件。EK 和 Fe/C 之间的协同效应通过 PCB28 去除效率-EK-Fe/C(58.6±8.8%)>EK(37.7±1.6%)>Fe/C(6.8±5.0%)的顺序得到揭示。这主要归因于 EK 和 Fe/C 增强了芬顿反应,其中 EK 促进了 Fe/C 的溶解和 HO 的生成。除了由 Fenton 反应生成的·OH 氧化外,EK 介导的电化学氧化、Fe/C 诱导的还原以及 Fe/C 吸附 PCB 的迁移都是 EK-Fe/C 体系中 PCB28 去除的重要贡献因素。这些发现表明,EK 和 Fe/C 的结合是一种很有前途的有机污染土壤修复技术。

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