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首页> 外文期刊>Physica, B. Condensed Matter >Investigation of electrical and optoelectronic properties of zinc oxide nanowires
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Investigation of electrical and optoelectronic properties of zinc oxide nanowires

机译:氧化锌纳米线的光电性能研究

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摘要

Zinc oxide (ZnO) nanowires have been synthesized by using tubular furnace chemical vapor deposition technique. The morphology, chemical composition and crystal structure of as-synthesized ZnO nanowires were examined by scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDS) and X-ray diffraction (XRD) techniques. Four-terminal currentvoltage (IV) measurements were employed to study the electrical conductance of ZnO nanowires under various testing gas environments for gas sensing purpose. The IV curves at temperature ranging from 150 to 300 K were recorded in the testing chamber under vacuum. The Arrhenius plot shows perfect linear relationship between the logarithm of the current I and inverse temperature 1/T. The donor level of the semiconducting nanowires is about 326 meV. The IV behaviors were found to be reversible and repeatable with testing gases. The electrical conductivity was enhanced by a factor of four with ambient CO gas compared to that in vacuum and other testing gases. The optoelectronic properties of the ZnO nanowires were obtained by two-terminal IV measurement method while the nanowires were illuminated by a ruby laser. The electrical conductivity was increased by 60% when the laser was present in comparison to that when the laser was off. Those significant changes suggest that nano-devices constructed by the ZnO nanowires could be used in gas sensing and optical switching applications.
机译:氧化锌(ZnO)纳米线已经通过使用管式炉化学气相沉积技术合成。通过扫描电子显微镜(SEM),能量色散X射线光谱(EDS)和X射线衍射(XRD)技术检查了合成后的ZnO纳米线的形态,化学组成和晶体结构。采用四端电流电压(IV)测量以研究在各种测试气体环境下ZnO纳米线的电导率,以进行气体传感。在真空下在测试室中记录在150至300 K温度范围内的IV曲线。 Arrhenius图显示了电流I的对数与1 / T逆温度之间的完美线性关系。半导体纳米线的施主能级约为326meV。发现IV行为与测试气体可逆且可重复。与真空和其他测试气体相比,环境CO气体的电导率提高了四倍。 ZnO纳米线的光电性能是通过两端IV测量方法获得的,而纳米线则被红宝石激光器照射。与关闭激光时相比,使用激光时电导率提高了60%。这些重大变化表明,由ZnO纳米线构成的纳米器件可用于气体传感和光开关应用。

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