用于气敏应用的WO3/TiO2异质结的可调化学反应性和选择性

V. Galstyan, N. Poli, V. Golovanov, A. D’arco, S. Macis, S. Lupi, E. Bolli, S. Kaciulis, A. Mezzi, E. Comini
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引用次数: 2

摘要

目前,对具有新功能的纳米复合材料在化学气体传感器和其他催化装置中的应用需求急剧增长。此外,绿色合成方法被广泛用于半导体纳米结构的制备,以减少对人类健康和环境的有害影响。本文报道了一种基于WO3和TiO2的纳米复合材料(WO3/TiO2)的制备,该材料具有不同寻常的电子带取向和新颖的气敏性能。该材料是基于钨/钛金属薄膜的水蒸气诱导氧化的生态友好工艺合成的。原始WO3对丙酮高度敏感,其中材料的响应因其工作温度而增强。相反,WO3/TiO2复合材料表现出主要不同的传感性能,并且在相对较低的工作温度下对一氧化碳具有良好的选择性响应。结果表明,原始WO3和WO3/TiO2材料功能的显著差异可归因于WO3/TiO2异质结中的能带对准和电荷转移方向。因此,为WO3的气敏和催化性能的工程化和优化提供了一条有效的WO3/TiO2纳米复合材料的开发途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tunable Chemical Reactivity and Selectivity of WO3/TiO2 Heterojunction for Gas Sensing Applications
Nowadays, there is a dramatically growing demand for nanocomposite materials with new functionalities for their application in chemical gas sensors and other catalytic devices. Moreover, green synthesis methods are intensively employed in the preparation of semiconductor nanostructures to reduce the hazardous effects on human health and the environment. Here the fabrication of a nanocomposite material based on WO3 and TiO2 (WO3/TiO2) with unusual electronic band alignment and novel gas sensing properties is reported. The material is synthesized by an eco‐friendly process based on the water vapor‐induced oxidation of tungsten/titanium metallic films. The pristine WO3 is highly sensitive to acetone, where the response of the material is enhanced by its operating temperature. Instead, WO3/TiO2 composite shows principally different sensing performance and it has a good selective response to carbon monoxide at a relatively low operating temperature. The obtained results indicate that the significant differences between the functionalities of pristine WO3 and WO3/TiO2 material can be attributed to the band alignment and the direction of charge transfer in the WO3/TiO2 heterojunction. Hence, an efficient way for the development of WO3/TiO2 nanocomposites, which can be useful for the engineering and optimization of gas sensing and catalytic properties of WO3, is presented.
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