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没食子酸介导的芬顿工艺降解新兴污染物和染料的研究综述。

A Review of Gallic Acid-Mediated Fenton Processes for Degrading Emerging Pollutants and Dyes.

机构信息

Institute of Natural Resources, Federal University of Itajubá, Itajubá 37500-903, MG, Brazil.

出版信息

Molecules. 2023 Jan 24;28(3):1166. doi: 10.3390/molecules28031166.

Abstract

Diverse reducing mediators have often been used to increase the degradation of emerging pollutants (EPs) and dyes through the Fenton reaction (Fe + HO → Fe + HO + HO). Adding reductants can minimize the accumulation of Fe in a solution, leading to accelerated Fe regeneration and the enhanced generation of reactive oxygen species, such as the HO radical. The present study consisted in reviewing the effects of gallic acid (GA), a plant-extracted reductant, on the Fenton-based oxidation of several EPs and dyes. It was verified that the pro-oxidant effect of GA was not only reported for soluble iron salts as a catalyst (homogeneous Fenton), but also iron-containing solid materials (heterogeneous Fenton). The most common molar proportion verified in the studies was catalyst:oxidant:GA equal to 1:10-20:1. This shows that the required amount of both catalyst and GA is quite low in comparison with the oxidant, which is generally HO. Interestingly, GA has proven to be an effective mediator at pH values well above the ideal range of 2.5-3.0 for Fenton processes. This allows treatments to be carried out at the natural pH of the wastewater. The use of plant extracts or wood barks containing GA and other reductants is suggested to make GA-mediated Fenton processes easier to apply for treating real wastewater.

摘要

多种还原剂经常被用于通过芬顿反应(Fe + HO → Fe + HO + HO)增加新兴污染物(EPs)和染料的降解。添加还原剂可以最小化溶液中 Fe 的积累,导致 Fe 更快地再生和活性氧物质(如 HO 自由基)的生成增强。本研究旨在综述没食子酸(GA)作为一种植物提取还原剂对几种 EPs 和染料的芬顿氧化作用的影响。结果表明,GA 的促氧化作用不仅在可溶性铁盐作为催化剂(均相芬顿)时被报道,而且在含铁的固体材料(非均相芬顿)时也被报道。在研究中最常见的摩尔比例是催化剂:氧化剂:GA 等于 1:10-20:1。这表明与氧化剂(通常是 HO)相比,催化剂和 GA 的所需量非常低。有趣的是,GA 已被证明在 pH 值远高于芬顿工艺理想范围 2.5-3.0 的情况下是一种有效的介质。这使得可以在废水的自然 pH 值下进行处理。建议使用含有 GA 和其他还原剂的植物提取物或树皮,以使 GA 介导的芬顿工艺更容易应用于处理实际废水。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d3e/9921589/30a650efbef9/molecules-28-01166-g001.jpg

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