Water Utilisation and Environmental Engineering Division, Department of Chemical Engineering, University of Pretoria, Pretoria 0002, South Africa.
Molecules. 2022 Oct 30;27(21):7381. doi: 10.3390/molecules27217381.
Electrokinetic remediation has, in recent years, shown great potential in remediating polluted environments. The technology can efficiently remove heavy metals, chlorophenols, polychlorinated biphenyls, phenols, trichloroethane, benzene, toluene, ethylbenzene, and xylene (BTEX) compounds and entire petroleum hydrocarbons. Electrokinetic remediation makes use of electrolysis, electroosmosis, electrophoresis, diffusion, and electromigration as the five fundamental processes in achieving decontamination of polluted environments. These five processes depend on pH swings, voltage, electrodes, and electrolytes used in the electrochemical system. To apply this technology at the field scale, it is necessary to pursue the design of effective processes with low environmental impact to meet global sustainability standards. It is, therefore, imperative to understand the roles of the fundamental processes and their interactions in achieving effective and sustainable electrokinetic remediation in order to identify cleaner alternative solutions. This paper presents an overview of different processes involved in electrokinetic remediation with a focus on the effect of pH, electrodes, surfactants, and electrolytes that are applied in the remediation of contaminated soil and how these can be combined with cleaner technologies or alternative additives to achieve sustainable electrokinetic remediation. The electrokinetic phenomenon is described, followed by an evaluation of the impact of pH, surfactants, voltage, electrodes, and electrolytes in achieving effective and sustainable remediation.
近年来,电动修复技术在污染环境修复中显示出巨大的潜力。该技术可以有效地去除重金属、氯酚、多氯联苯、酚类、三氯乙烯、苯、甲苯、乙苯和二甲苯(BTEX)化合物以及所有石油烃类物质。电动修复利用电解、电渗析、电泳、扩散和电迁移作为实现污染环境净化的五个基本过程。这五个过程取决于电化学系统中使用的 pH 值变化、电压、电极和电解质。为了在现场规模应用这项技术,有必要追求具有低环境影响的有效工艺设计,以满足全球可持续性标准。因此,了解基本过程及其在实现有效和可持续电动修复中的相互作用至关重要,以便确定更清洁的替代解决方案。本文概述了电动修复中涉及的不同过程,重点介绍了 pH 值、电极、表面活性剂和电解质在污染土壤修复中的应用,以及如何将这些与清洁技术或替代添加剂相结合,以实现可持续的电动修复。本文描述了电动现象,然后评估了 pH 值、表面活性剂、电压、电极和电解质在实现有效和可持续修复方面的影响。