首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Light-controlled C2H2 gas sensing based on Au-ZnO nanowires with plasmon-enhanced sensitivity at room temperature
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Light-controlled C2H2 gas sensing based on Au-ZnO nanowires with plasmon-enhanced sensitivity at room temperature

机译:基于Au-ZnO纳米线的光控C2H2气体传感,具有室温等离激元增强的灵敏度

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摘要

We have experimentally demonstrated a visible light-controlled sensing response of the Au-ZnO nanowires for C2H2 gas at room temperature by plasmon-enhanced sensitivity, in which Au nanoparticles were coated on the surface of ZnO nanowires. The ZnO nanowires without Au nanoparticles showed a normal n-type response, whereas the Au coated ZnO nanowires exhibited a concentration-dependent and time-dependent p-n transition response for the sensing response to C2H2 gas at room temperature. This unconventional sensing behavior can be explained by the formation of a surface inversion layer. Meanwhile, this sensing can be modulated and the response was significantly enhanced at room temperature under visible light illumination. This light-controlled sensing response from the Au-ZnO nanowires was attributed to the fact that the visible light excites the surface plasmon resonance of Au nanoparticles on the surface of ZnO nanowires, and it can inject hot electrons into the conduction band of ZnO. These results hinted the potential application of the as-fabricated sensor in monitoring C2H2 gas at room temperature, and opened up new approaches for developing a new generation of visible light modulated gas sensors.
机译:我们已经通过等离激元增强的敏感性实验证明了Au-ZnO纳米线在室温下对C2H2气体的可见光控制感测响应,其中Au纳米粒子被涂覆在ZnO纳米线的表面上。不含Au纳米粒子的ZnO纳米线表现出正常的n型响应,而Au涂覆的ZnO纳米线在室温下对C2H2气体的传感响应表现出浓度依赖性和时间依赖性p-n跃迁响应。这种非常规的感测行为可以通过形成表面反转层来解释。同时,这种感测可以被调制,并且在室温下在可见光照明下的响应被显着增强。来自Au-ZnO纳米线的这种光控感测响应归因于以下事实:可见光激发了ZnO纳米线表面上的Au纳米粒子的表面等离子体共振,并且可以将热电子注入ZnO的导带中。这些结果暗示了这种传感器在室温下监测C2H2气体方面的潜在应用,并为开发新一代可见光调制气体传感器开辟了新途径。

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