Université Clermont Auvergne, CNRS, SIGMA Clermont, Institut de Chimie de Clermont-Ferrand, F-63000, Clermont-Ferrand, France; Research Laboratory of Advanced Water and Wastewater Treatment Processes, Department of Applied Chemistry, Faculty of Chemistry, University of Tabriz, 51666-16471, Tabriz, Iran.
Université Clermont Auvergne, CNRS, SIGMA Clermont, Institut de Chimie de Clermont-Ferrand, F-63000, Clermont-Ferrand, France.
Chemosphere. 2022 Mar;291(Pt 1):132920. doi: 10.1016/j.chemosphere.2021.132920. Epub 2021 Nov 17.
This paper outlines the synthesis and application of a sustainable composite for the photo-Fenton-like degradation of caffeine, bisphenol A, and simazine. The phase, morphology, optical and magnetic properties of the samples were evaluated by different characterization techniques. The composite of FeCoZnO and copper-chromium layered double hydroxide (CuCr-LDH) was determined to be the most favorable photocatalyst in the photo-Fenton-like process when compared with FeO, FeCoZnO, CuCr-LDH, and FeO/CuCr-LDH composite. Studying the efficiency of the photo-Fenton-like degradation process in the presence of the FeCoZnO/CuCr-LDH composite revealed a degradation rate constant of caffeine twice more than the sum of those obtained for the individual processes. This ascribes to the synergistic effect by which the photo-generated electron-hole from the catalyst and the efficient reduction of Fe, Cu, etc. during the photo-Fenton-like reaction is accelerated. Moreover, under the optimal condition and after 120 min of heterogenous photo-Fenton-like process at natural pH, > 90% of pollutants mixture was decomposed. The experiments fulfilled in near-real conditions demonstrated I) the high stability and magnetically recoverability of the photocatalyst and II) the proper degradation performance of the applied heterogenous photo-Fenton-process in the removal of pollutant mixture in different water bodies and in the presence of chloride and bicarbonate ions.
本文概述了一种可持续复合材料的合成与应用,该复合材料可用于模拟芬顿类反应降解咖啡因、双酚 A 和西玛津。采用不同的表征技术对样品的相、形貌、光学和磁性能进行了评价。与 FeO、FeCoZnO、CuCr-LDH 和 FeO/CuCr-LDH 复合材料相比,FeCoZnO 和铜-铬层状双氢氧化物(CuCr-LDH)的复合材料被确定为光芬顿类过程中最有利的光催化剂。研究 FeCoZnO/CuCr-LDH 复合材料存在下的光芬顿类降解过程的效率表明,咖啡因的降解速率常数是单个过程获得的速率常数的两倍。这归因于催化剂中光生电子空穴与光芬顿类反应过程中 Fe、Cu 等的有效还原之间的协同作用得到了加速。此外,在自然 pH 值下的非均相光芬顿类过程优化条件下和 120 分钟后,混合污染物的去除率超过 90%。在近实际条件下进行的实验证明了:i)催化剂具有高稳定性和可磁回收性;ii)所应用的非均相光芬顿过程在不同水体中去除污染物混合物以及在氯离子和碳酸氢根离子存在下具有适当的降解性能。