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Enhanced Gas-Sensing Response of Zinc Oxide Nanorods Synthesized via Hydrothermal Route for Nitrogen Dioxide Gas

机译:增强通过水热途径合成的氧化锌纳米棒用于氮二氧化氮气体的增强氧化锌纳米杆

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摘要

In recent years, advanced material processing techniques have allowed scientists to research and document the properties of nanostructured metal oxides. One such material system, zinc oxide (ZnO), has emerged as a favorable option for a multitude of applications. In this study, thin films of ZnO with nanorod-like architectures were hydrothermally formed on a glass substrate and their physical and chemical properties were thoroughly characterized. X-ray diffraction confirmed the wurtzite structure and a scanning electron microscope was used to verify the vertical alignment of the rods. Defects due to the high oxygen vacancy concentration were revealed through photoluminescence studies. The high surface area of the nanorods works in conjunction with these defects and an optimal inter-rod spacing creates conditions for effective gas adsorption and diffusion. With this in mind, the nanorods were used to fabricate a gas sensor which demonstrated excellent NO2 sensitivity and selectivity at a relatively low operating temperature.
机译:近年来,先进的材料加工技术允许科学家研究和记录纳米结构金属氧化物的性质。一种这样的材料系统,氧化锌(ZnO)被出现为众多应用的有利选择。在该研究中,用纳米棒状架构的ZnO的薄膜在玻璃基板上被水热形成,其物理和化学性质彻底表征。 X射线衍射证实了紫立岩岩结构,并且使用扫描电子显微镜来验证杆的垂直对准。通过光致发光研究揭示了由于高氧空位浓度引起的缺陷。纳米棒的高表面积与这些缺陷一起工作,并且最佳的杆间距为有效气体吸附和扩散产生条件。考虑到这一点,纳米棒用于制造气体传感器,该气体传感器在相对较低的工作温度下表现出优异的NO2灵敏度和选择性。

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