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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >A review on WO3 based gas sensors: Morphology control and enhanced sensing properties
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A review on WO3 based gas sensors: Morphology control and enhanced sensing properties

机译:基于WO3的气体传感器的综述:形态控制和增强传感特性

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摘要

Tungsten oxide (WO3), a typical n-type gas-sensing material, has attracted considerable attention to detect various hazardous gases. Previous studies indicated that unique nanostructures are highly related to the sensing performances. So far, great advances have been achieved to design and fabricate diverse WO3 in different dimensional. However, it is still challenging to achieve high performances. To significantly enhance the gas-sensing properties, many strategies have been explored. In this review, the general approaches to tune the morphologies of WO3 are analyzed. Then, much more attention is particularly paid to improve the sensing-properties of WO3 based gas sensors. Firstly, the fundamental of WO3 based gas sensors is described. Secondly, various progresses to control the morphologies in 0-dimensional (0D), one-dimensional (1D), two-dimensional (2D), and three-dimensional (3D) WO3 will be reviewed. Thirdly, the efficient strategies for the enhancement of gas-sensing properties based on WO3 will be discussed. Meanwhile, the enhancement mechanisms are taken into account as well. Finally, a perspective on the further development for WO3 synthesis and applications in gas sensors is proposed as well. (C) 2019 Elsevier B.V. All rights reserved.
机译:氧化物氧化物(WO3),典型的N型气体传感材料,引起了相当大的关注来检测各种危险气体。以前的研究表明,独特的纳米结构与传感性能高度相关。到目前为止,已经实现了巨大的进步来设计和制造不同维度的不同的WO3。然而,实现高性能仍然挑战。为了显着提高气体传感特性,已经探讨了许多策略。在本文中,分析了调整WO3形态的一般方法。然后,特别需要更多地注意以改善基于WO3的气体传感器的感测性。首先,描述了WO3基础气体传感器的基础。其次,将介绍各种进展以控制0维(0D),一维(1D),二维(2D)和三维(3D)WO3中的形态学。第三,将讨论基于WO3的增强基于WO3的气体传感特性的有效策略。同时,还考虑了增强机制。最后,提出了对WO3合成和气体传感器应用的进一步发展的观点。 (c)2019 Elsevier B.v.保留所有权利。

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