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Transport properties 'of hybrid nanoparticle-nanowire systems and their application to gas sensing

机译:混合纳米粒子-纳米线系统的传输特性及其在气体传感中的应用

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Experimental data and theoretical modelling of the I- V characteristics of a gas sensor constructed from a mat of Au nanoparticle-coated GaN nanowires are presented. The principal mechanism for the response of the gas sensor to methane is explained in terms of the formation of a depletion layer within the nanowires due to the presence of the gold nanoparticles. The depth of the depletion layer is modulated by the potential induced by the physisorption of gas molecules onto the Au nanoparticles. A statistical model of the temperature-dependent I-V characteristics of bare and Au nanoparticle-decorated mats of GaN nanowires based on Poisson's equation has been used to determine the depth of the depletion layers of the nanowires. The room-temperature carrier concentration for the GaN nanowires was determined to be approximately 2.2 x 10~(17) cm~(-3). The induced potential due to methane physisorption onto the Au nanoparticles that decorate the GaN nanowires was determined to be approximately -37 mV.
机译:介绍了由Au纳米颗粒包覆的GaN纳米线垫构成的气体传感器的I-V特性的实验数据和理论模型。气体传感器对甲烷的响应的主要机理是根据金纳米颗粒的存在在纳米线内形成耗尽层来解释的。耗尽层的深度由气体分子在Au纳米粒子上的物理吸附所诱导的电势调节。基于泊松方程的GaN纳米线裸垫和Au纳米颗粒修饰垫的随温度变化的I-V特性的统计模型已用于确定纳米线耗尽层的深度。 GaN纳米线的室温载流子浓度确定为大约2.2 x 10〜(17)cm〜(-3)。确定了由于甲烷物理吸附到装饰GaN纳米线的Au纳米颗粒上而引起的感应电势约为-37 mV。

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