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电芬顿技术在修复水环境污染中药物化合物的最新进展。

Recent progress in electro-Fenton technology for the remediation of pharmaceutical compounds in aqueous environments.

机构信息

Institute of Aquatic Science and Technology, National Kaohsiung University of Science and Technology, Kaohsiung City 81157, Taiwan.

Institute of Environmental Sciences and Engineering (IESE), School of Civil and Environmental Engineering (SCEE), National University of Science and Technology (NUST), Sector H-12, Islamabad 44000, Pakistan; Department of Environmental Engineering, University of Engineering and Technology, Taxila 47050, Pakistan.

出版信息

Sci Total Environ. 2024 Oct 10;946:174253. doi: 10.1016/j.scitotenv.2024.174253. Epub 2024 Jun 25.

DOI:10.1016/j.scitotenv.2024.174253
PMID:38936713
Abstract

The global focus on wastewater treatment has intensified in the contemporary era due to its significant environmental and human health impacts. Pharmaceutical compounds (PCs) have become an emerging concern among various pollutants, as they resist conventional treatment methods and pose a severe environmental threat. Advanced oxidation processes (AOPs) emerge as a potent and environmentally benign approach for treating recalcitrant pharmaceuticals. To address the shortcomings of traditional treatment methods, a technology known as the electro-Fenton (EF) method has been developed more recently as an electrochemical advanced oxidation process (EAOP) that connects electrochemistry to the chemical Fenton process. It has shown effective in treating a variety of pharmaceutically active compounds and actual wastewaters. By producing HO in situ through a two-electron reduction of dissolved O on an appropriate cathode, the EF process maximizes the benefits of electrochemistry. Herein, we have critically reviewed the application of the EF process, encompassing diverse reactor types and configurations, the underlying mechanisms involved in the degradation of pharmaceuticals and other emerging contaminants (ECs), and the impact of electrode materials on the process. The review also addresses the factors influencing the efficiency of the EF process, such as (i) pH, (ii) current density, (iii) HO concentration, (iv) and others, while providing insight into the scalability potential of EF technology and its commercialization on a global scale. The review delves into future perspectives and implications concerning the ongoing challenges encountered in the operation of the electro-Fenton process for the treatment of PCs and other ECs.

摘要

由于其对环境和人类健康的重大影响,全球对废水处理的关注在当代得到了加强。药物化合物 (PCs) 已成为各种污染物中一个令人关注的新兴问题,因为它们抵制常规处理方法,并对环境构成严重威胁。高级氧化工艺 (AOPs) 作为一种处理难处理药物的有效且环境友好的方法而出现。为了解决传统处理方法的缺点,最近开发了一种称为电芬顿 (EF) 方法的技术,作为一种电化学高级氧化工艺 (EAOP),将电化学与化学芬顿工艺联系起来。它已被证明在处理各种具有生物活性的化合物和实际废水方面非常有效。通过在适当的阴极上通过溶解氧的两电子还原原位产生 HO,EF 工艺最大限度地发挥了电化学的优势。在此,我们批判性地回顾了 EF 工艺的应用,包括各种反应器类型和配置、药物和其他新兴污染物 (ECs) 降解所涉及的基本机制,以及电极材料对该过程的影响。该评论还讨论了影响 EF 工艺效率的因素,例如 (i) pH 值、(ii) 电流密度、(iii) HO 浓度、(iv) 和其他因素,同时深入探讨了 EF 技术的可扩展性潜力及其在全球范围内的商业化。该评论探讨了在操作电芬顿工艺处理 PCs 和其他 ECs 时遇到的持续挑战的未来展望和影响。

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