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解析 TiO/WO 混合氧化物的光催化性能。

Unraveling the photocatalytic properties of TiO/WO mixed oxides.

机构信息

Laboratory of Photochemistry and Materials Science, Institute of Chemistry, Federal University of Uberlandia, Brazil.

出版信息

Photochem Photobiol Sci. 2019 Oct 9;18(10):2469-2483. doi: 10.1039/c9pp00163h.

Abstract

TiO2/WO3 heterojunctions are one of the most investigated systems for photocatalytic applications. However, distinct behavior can be found in the literature depending on the pollutant to be degraded and the photocatalyst preparation conditions. Some authors reported improved photocatalytic activities in relation to TiO2, while others a deleterious effect. Different factors have been identified to influence the activity of such systems. In this work, a systematic investigation of TiO2/WO3 samples with different W/Ti ratios (0-100%) was carried out using different pollutants as targets (gaseous NO, acetaldehyde and aqueous methylene blue solutions). A detailed structural investigation along with transient absorption studies and photoelectrochemical measurements allowed the rationalization of some of the previously reported factors that control the TiO2/WO3 photoactivity, i.e. the inability to reduce molecular oxygen, the stabilization of the anatase phase and the adsorption surface properties. The investigations also identified a factor not previously reported: in TiO2/WO3 systems, a fraction of long-lived holes do not take part in the interfacial charge transfer to efficient hole quenchers, such as methanol. This behavior seems to be related to the doping of the TiO2 matrix with W(vi) and plays a key role in the photocatalytic activity.

摘要

TiO2/WO3 异质结是光催化应用中研究最多的体系之一。然而,根据要降解的污染物和光催化剂的制备条件,在文献中可以发现不同的行为。一些作者报道了与 TiO2 相比,光催化活性有所提高,而另一些作者则报道了有害影响。已经确定了许多因素会影响此类体系的活性。在这项工作中,使用不同的污染物作为目标(气态 NO、乙醛和水溶液亚甲基蓝溶液),对不同 W/Ti 比(0-100%)的 TiO2/WO3 样品进行了系统的研究。详细的结构研究、瞬态吸收研究和光电化学测量允许对一些以前报道的控制 TiO2/WO3 光活性的因素进行合理化,即不能还原分子氧、稳定锐钛矿相和吸附表面特性。研究还确定了一个以前未报道的因素:在 TiO2/WO3 体系中,一部分长寿命空穴不参与界面电荷转移到有效的空穴猝灭剂,如甲醇。这种行为似乎与 TiO2 基质中 W(vi)的掺杂有关,并在光催化活性中起着关键作用。

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