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Enhanced piezo-humidity sensing of a Cd-ZnO nanowire nanogenerator as a self-powered/active gas sensor by coupling the piezoelectric screening effect and dopant displacement mechanism

机译:结合压电屏蔽效应和掺杂剂置换机制,增强Cd-ZnO纳米线纳米发电机作为自供电/活性气体传感器的压电湿度感测

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Highly sensitive humidity sensing has been realized from a Cd-doped ZnO nanowire (NW) nanogenerator (NG) as a self-powered/active gas sensor. The piezoelectric output of the device acts not only as a power source, but also as a response signal to the relative humidity (RH) in the environment. The response of Cd-ZnO (1 : 10) NWs reached up to 85.7 upon exposure to 70% relative humidity, much higher than that of undoped ZnO NWs. Cd dopant can increase the number of oxygen vacancies in the NWs, resulting in more adsorption sites on the surface of the NWs. Upon exposure to a humid environment, a large amount of water molecules can displace the adsorbed oxygen ions on the surface of Cd-ZnO NWs. This procedure can influence the carrier density in Cd-ZnO NWs and vary the screening effect on the piezoelectric output. Our study can stimulate a research trend on exploring composite materials for piezo-gas sensing.
机译:通过Cd掺杂的ZnO纳米线(NW)纳米发生器(NG)作为自供电/活性气体传感器,已经实现了高度灵敏的湿度传感。该设备的压电输出不仅充当电源,而且还充当对环境中相对湿度(RH)的响应信号。暴露于70%的相对湿度下,Cd-ZnO(1:10)NW的响应高达85.7,远高于未掺杂的ZnO NW。 Cd掺杂剂可以增加NW中氧空位的数量,从而导致NW表面上更多的吸附位点。暴露在潮湿的环境中,大量的水分子会置换Cd-ZnO NWs表面吸附的氧离子。此过程可影响Cd-ZnO NW中的载流子密度,并改变对压电输出的屏蔽效果。我们的研究可以激发研究探索用于压电气体传感的复合材料的研究趋势。

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