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壳聚糖负载 ZnO 和 Ce-ZnO 纳米花可见光下光催化降解孔雀石绿染料。

Photocatalytic degradation of malachite green dye using chitosan supported ZnO and Ce-ZnO nano-flowers under visible light.

机构信息

Chemistry Department, Faculty of Science, Beni-Suef University, Beni-Suef, Egypt.

Geology Department, Faculty of Science, Beni-Suef University, Beni-Suef, Egypt.

出版信息

J Environ Manage. 2020 Mar 15;258:110043. doi: 10.1016/j.jenvman.2019.110043. Epub 2020 Jan 7.

Abstract

Two types of chitosan-based composites (chitosan/ZnO and chitosan/Ce-ZnO composites) were synthesized under microwave irradiation and characterized as advanced catalysts of enhanced photocatalytic activity under the visible light. The morphological investigation reflected the formation of ZnO and Ce doped ZnO at stunning micro flowers of nano limps. Additionally, the optical studies reflected a reduction in the bandgap of ZnO from 3.3 eV to 2.85 eV and 2.5 eV after supporting it onto chitosan chains and after doping it with cerium, respectively. The synthetic composites were applied in photocatalytic removal of malachite green dye under a visible light source. The synthetic CH/ZnO and CH/Ce-ZnO showed enhancement in the photocatalytic removal of M.G by 54% and 87%, respectively, as compared to the pure ZnO. The synthetic composites are of high stability and can be reused for five photocatalytic degradation cycles at stunning removal percentages. The main oxidizing radicals during the removal of M.G by CH/ZnO are the generated electron-hole pairs as well as the hydroxyl radicals. The effective species in CH/Ce-ZnO photocatalytic system are the photogenerated hydroxyl radicals followed by the electron-hole pairs.

摘要

两种壳聚糖基复合材料(壳聚糖/ZnO 和壳聚糖/Ce-ZnO 复合材料)在微波辐射下合成,并被表征为在可见光下具有增强光催化活性的先进催化剂。形态研究反映了 ZnO 和 Ce 掺杂 ZnO 在纳米薄片的惊人微花中的形成。此外,光学研究表明,在负载到壳聚糖链上和掺杂铈后,ZnO 的能带隙分别从 3.3eV 降低到 2.85eV 和 2.5eV。合成的复合材料应用于可见光下孔雀石绿染料的光催化去除。与纯 ZnO 相比,合成的 CH/ZnO 和 CH/Ce-ZnO 分别将 M.G 的光催化去除率提高了 54%和 87%。合成的复合材料具有高稳定性,可在五次光催化降解循环中重复使用,去除率惊人。在 CH/ZnO 去除 M.G 的过程中,主要的氧化自由基是生成的电子-空穴对和羟基自由基。在 CH/Ce-ZnO 光催化体系中,有效物种是光生羟基自由基,其次是电子-空穴对。

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