Department of Chemical Engineering, University of Vigo, Campus As Lagoas-Marcosende, 36310, Vigo, Spain.
Department of Chemical Engineering, University of Vigo, Campus As Lagoas-Marcosende, 36310, Vigo, Spain.
Chemosphere. 2018 Jun;201:399-416. doi: 10.1016/j.chemosphere.2018.03.002. Epub 2018 Mar 2.
Over the last decades, advanced oxidation processes have often been used alone, or combined with other techniques, for remediation of ground and surface water pollutants. The application of heterogeneous catalysis to electrochemical advanced oxidation processes is especially useful due to its efficiency and environmental safety. Among those processes, electro-Fenton stands out as the one in which heterogeneous catalysis has been broadly applied. Thus, this review has introduced an up-to-date collation of the current knowledge of the heterogeneous electro-Fenton process, highlighting recent advances in the use of different catalysts such as iron minerals (pyrite, magnetite or goethite), prepared catalysts by the load of metals in inorganic and organic materials, nanoparticles, and the inclusion of catalysts on the cathode. The effects of physical-chemical parameters as well as the mechanisms involved are critically assessed. Finally, although the utilization of this process to remediation of wastewater overwhelmingly outnumber other utilities, several applications have been described in the context of regeneration of adsorbent or the remediation of soils as clear examples of the feasibility of the electro-Fenton process to solve different environmental problems.
在过去几十年中,高级氧化工艺经常被单独使用,或者与其他技术结合使用,用于修复地下水和地表水污染物。将多相催化应用于电化学高级氧化工艺因其效率高和环境安全而特别有用。在这些工艺中,电芬顿法是多相催化得到广泛应用的一种。因此,本综述介绍了目前关于多相电芬顿工艺的最新知识,重点介绍了在使用不同催化剂(如黄铁矿、磁铁矿或针铁矿等铁矿物)、通过将金属负载在无机和有机材料、纳米粒子上制备催化剂以及将催化剂包含在阴极等方面的最新进展。对涉及的物理化学参数和机制进行了严格评估。最后,尽管该工艺在废水修复方面的应用远远超过其他用途,但在吸附剂再生或土壤修复方面也有一些应用,这清楚地表明了电芬顿工艺解决不同环境问题的可行性。