固体纳米金属氧化物光催化剂及其在污染物降解中的应用综述

Photochem Pub Date : 2022-08-05 DOI:10.3390/photochem2030041
Carlos Díaz, M. Segovia, M. Valenzuela
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引用次数: 7

摘要

各种行业中使用的大多数染料都是有毒和致癌的,因此对人类和海洋生态系统构成严重危害。因此,在过去几年中,人们对释放到环境中的染料的影响进行了广泛的研究。多相光催化已被证明是降解大气和水生有机污染物的有效工具。它利用半导体光催化剂存在下的阳光来加速环境污染物的修复和剧毒分子的破坏。到目前为止,光催化一直被认为是废水处理最具吸引力的选择之一,因为它具有巨大的潜力和高效率,可以利用阳光在固体光催化剂的帮助下去除有机污染物和有害细菌。在目前使用的光催化剂中,纳米结构的金属氧化物半导体是最有效的。本文综述了利用固态方法获得的纳米结构金属氧化物半导体降解染料的最新研究进展。在几种情况下,通过该方法获得的金属氧化物表现出比使用其他溶液方法获得的纳米结构金属氧化物更好的光催化效率。本综述讨论了各种纳米结构过渡金属氧化物的例子,如TiO2、Fe2O3、NiO、ReO3、IrO2、Rh2O3、Rh/RhO2和锕系元素ThO2,用作亚甲基蓝的光催化剂。研究发现,光催化效率不仅取决于金属氧化物的带隙,还取决于其形貌。多孔纳米结构金属氧化物往往比具有类似带隙的金属氧化物表现出更高的光催化效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Solid State Nanostructured Metal Oxides as Photocatalysts and Their Application in Pollutant Degradation: A Review
Most dyes used in various industries are toxic and carcinogenic, thus posing a serious hazard to humans as well as to the marine ecosystem. Therefore, the impact of dyes released into the environment has been studied extensively in the last few years. Heterogeneous photocatalysis has proved to be an efficient tool for degrading both atmospheric and aquatic organic contaminants. It uses the sunlight in the presence of a semiconductor photocatalyst to accelerate the remediation of environmental contaminants and the destruction of highly toxic molecules. To date, photocatalysis has been considered one of the most appealing options for wastewater treatment due to its great potential and high efficiency by using sunlight to remove organic pollutants and harmful bacteria with the aid of a solid photocatalyst. Among the photocatalysts currently used, nanostructured metal oxide semiconductors have been among the most effective. This review paper presents an overview of the recent research improvements on the degradation of dyes by using nanostructured metal oxide semiconductors obtained by a solid-state method. Metal oxides obtained by this method exhibited better photocatalytic efficiency than nanostructured metal oxides obtained using other solution methods in several cases. The present review discusses examples of various nanostructured transition metal oxides—such as TiO2, Fe2O3, NiO, ReO3, IrO2, Rh2O3, Rh/RhO2, and the actinide ThO2—used as photocatalysts on methylene blue. It was found that photocatalytic efficiency depends not only on the bandgap of the metal oxide but also on its morphology. Porous nanostructured metal oxides tend to present higher photocatalytic efficiency than metal oxides with a similar band gap.
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