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Facing the Challenge of Poly- and Perfluoroalkyl Substances in Water: Is Electrochemical Oxidation the Answer?

机译:面对水中的聚 - 和全氟烷基物质的挑战:是电化学氧化答案?

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摘要

Electrochemical treatment systems have the unique ability to completely mineralize poly- and perfluoroalkyl substances (PFASs) through potential-driven electron transfer reactions. In this review, we discuss the state-of-the-art on electrooxidation of PFASs in water, aiming at elucidating the impact of different operational and design parameters, as well as reported mechanisms of PFAS degradation at the anode surface. We have identified several shortcomings of the existing studies that are largely limited to small-scale laboratory batch systems and unrealistic synthetic solutions, which makes extrapolation of the obtained data to real-world applications difficult. PFASs are surfactant molecules, which display significant concentration-dependence on adsorption, electrosorption, and dissociation. Electrooxidation experiments conducted with high initial PFAS concentration and/or in high conductivity supporting electrolytes likely overestimate process performance. In addition, the formation of organohalogen byproducts, chlorate and perchlorate, was seldom considered. Nevertheless, the first step toward advancing from laboratory-scale to industrial-scale applications is recognizing both the strengths and limitations of electrochemical water treatment systems. More comprehensive and rigorous evaluation of novel electrode materials, application of scalable proof-of-concept studies, and acknowledgment of all treatment outputs (not just the positive ones) are imperative. The presence of PFASs in drinking water and in the environment is an urgent global public health issue. Developments made in material science and application of novel three-dimensional, porous electrode materials and nanostructured coatings are forging a path toward more sustainable water treatment technologies and potential chemical-free treatment of PFAS-contaminated water.
机译:电化学处理系统具有通过电位驱动的电子转移反应完全矿化的独特能力(PFASS)。在本文中,我们讨论了在水中施用的电氧化的最新技术,旨在阐明不同操作和设计参数的影响,以及报告的PFAS降解在阳极表面的劣化机制。我们已经确定了现有研究的几个缺点,这些研究主要仅限于小规模的实验室批量系统和不切实际的合成解决方案,这使得获得的数据的外推难以实现现实世界应用。 PFASS是表面活性剂分子,其显示对吸附,电吸收和解离的显着浓度依赖性。用高初始PFAS浓度和/或高导电性的电氧化实验,负载电解质可能高估过程性能。此外,很少考虑形成有机卤代丙酮,氯酸盐和高氯酸盐。然而,从实验室规模推进到工业规模应用的第一步是认识到电化学水处理系统的优点和限制。更全面且严谨的新型电极材料评估,可扩展的概念验证研究,以及所有治疗产出的确认(不仅仅是积极的)都是必不可少的。在饮用水和环境中存在PFASS是一种紧急的全球公共卫生问题。新型三维,多孔电极材料和纳米结构涂层的材料科学和应用中的开发是朝向更可持续的水处理技术的路径,潜在的PFAS污染水的无化学处理。

著录项

  • 来源
    《Environmental Science & Technology》 |2020年第23期|14815-14829|共15页
  • 作者单位

    Catalan Institute for Water Research (ICRA) 17003 Girona Spain Catalan Institution for Research and Advanced Studies (ICREA) 08010 Barcelona Spain;

    Catalan Institute for Water Research (ICRA) 17003 Girona Spain University of Girona 17004 Girona Spain;

    Department of Chemical Engineering University of Illinois at Chicago Chicago Illinois 60607 United States;

    Department of Chemical Engineering University of Illinois at Chicago Chicago Illinois 60607 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:37:04

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