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TiO_2 photocatalysis: progress from fundamentals to modification technology

机译:TiO_2光催化:从基础到改性技术的发展

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Heterogeneous photocatalysis is a promising method among advanced oxidation processes, which can be used for degradation of various organic pollutants in water and air. In heterogeneous photocatalysis, illumination of an oxide semiconductor, usually the anatage form of titanium dioxide, by UV radiation produces photo-excited electrons (e~-) and positively charged holes (h~+). In the aqueous phase, the illuminated surface is extensively regarded as a producer of hydroxyl radicals (h~+ + OH~- = HO). These hydroxyl radicals, holes, and conduction-band electrons can degrade organic pollutants directly or indirectly. However, the massive recombination of these photo-generated charge carriers and large band gap of TiO_2 limits its overall photocatalytic efficiency. These limitations can be overcome by changing surface properties of titania by adding suitable electron scavengers in the reaction medium or by modifying its electronic band structure through strategies like metal iononmetal atom doping, narrow band-gap semiconductor coupling, sensitization by organic dyes, etc. Based on recent studies reported in the literature, nonmetal ion doping and dye sensitization are very effective methods to extend the activating spectrum to visible radiation. This review emphasizes on the visible-light activation of TiO_2 and its application to environmental remediation.
机译:异质光催化是高级氧化工艺中一种很有前途的方法,可用于降解水和空气中的各种有机污染物。在非均相光催化中,通过紫外线辐射对氧化物半导体(通常为二氧化钛的修饰形式)的照明会产生光激发电子(e〜-)和带正电的空穴(h〜+)。在水相中,被照亮的表面被广泛认为是羟基自由基的产生者(h〜+ + OH〜-= HO)。这些羟基自由基,空穴和导带电子可以直接或间接降解有机污染物。然而,这些光生电荷载流子的大量重组和TiO_2的大带隙限制了其总体光催化效率。通过在反应介质中添加合适的电子清除剂来改变二氧化钛的表面性能,或者通过诸如金属离子/非金属原子掺杂,窄带隙半导体耦合,有机染料敏化等策略改变其电子能带结构,可以克服这些限制。根据文献报道的最新研究,非金属离子掺杂和染料敏化是将激活光谱扩展到可见辐射的非常有效的方法。这篇综述着重于TiO_2的可见光活化及其在环境修复中的应用。

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