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简便合成帚状FeOCl/g-CN纳米复合材料作为新型Z型光催化剂用于快速降解污染物

Facile synthesis of broom stick like FeOCl/g-CN nanocomposite as novel Z-scheme photocatalysts for rapid degradation of pollutants.

作者信息

Vadivel Sethumathavan, Fujii Manabu, Rajendran Saravanan

机构信息

Department of Civil and Environmental Engineering, Tokyo Institute of Technology, Meguro-ku, Tokyo, 152-8552, Japan.

Departamento de Ingeniería Mecánica, Facultad de Ingeniería, Universidad de Tarapacá, Avda. General Velásquez, 1775, Arica, Chile.

出版信息

Chemosphere. 2022 Nov;307(Pt 1):135716. doi: 10.1016/j.chemosphere.2022.135716. Epub 2022 Jul 16.

Abstract

A simple and cost-effective route has been utilized for the preparation of a novel lamellar structured FeOCl/g-CN nanocomposite as Z-scheme photocatalyst. The preparation method was performed under the ambient temperature conditions without any hazardous chemicals. Various characterization techniques, namely XRD, FESEM, TEM, FT-IR, UV-Vis, DRS, and PL were carried out to analyse the nanocomposite for confirmation of FeOCl/g-CN nanocomposite. To evaluate its and visible light degradation performances tetracycline (T-C) was used as target pollutant. Among the optimum loading for the g-CN incorporated FeOCl binary nanocomposites, the g-CN/FeOCl exhibited a superlative degradation performance toward the T-C antibiotic pollutant. The results confirmed that 95% of T-C was degraded within 40 min under photodegradation mechanism. The improved photodegradation performance in degradation of T-C was mainly due to the reduction in electron-hole recombination, broadening in the light absorption by g-CN incorporation, which leads to shortening the degradation time. Furthermore, the hydroxyl and superoxide radicals played a major role in the photodegradation process and the possible mechanism was elucidated and proposed. The present work implies a novel, sustainable, and efficient Z-scheme system that may deliver a convenient method for environment remediation.

摘要

一种简单且经济高效的方法被用于制备新型层状结构的FeOCl/g-CN纳米复合材料作为Z型光催化剂。该制备方法在环境温度条件下进行,无需任何危险化学品。采用多种表征技术,即XRD、FESEM、TEM、FT-IR、UV-Vis、DRS和PL,对纳米复合材料进行分析,以确认FeOCl/g-CN纳米复合材料。为了评估其在可见光下的降解性能,使用四环素(T-C)作为目标污染物。在g-CN掺入的FeOCl二元纳米复合材料的最佳负载量中,g-CN/FeOCl对T-C抗生素污染物表现出卓越的降解性能。结果证实,在光降解机制下,40分钟内95%的T-C被降解。T-C降解中光降解性能的提高主要归因于电子-空穴复合的减少以及g-CN掺入导致光吸收拓宽,从而缩短了降解时间。此外,羟基和超氧自由基在光降解过程中起主要作用,并阐明和提出了可能的机制。目前的工作意味着一种新型、可持续且高效的Z型体系,可为环境修复提供一种便捷方法。

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