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Nanoparticle design and assembly for p-type metal oxide gas sensors

机译:金属纳米颗粒为p型设计和组装氧化气体传感器

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摘要

Metal oxide semiconductors have wide band gaps with tailorable electrical properties and high stability, suitable for chemiresistive gas sensors. p-Type oxide semiconductors generally have less sensitivity than their n-type counterparts but provide unique functionality with low humidity dependence. Among various approaches to enhance the p-type characteristics, nanostructuring of active materials is essential to exhibit high sensing performances comparable to n-type materials. Moreover, p–n heterojunction formation can achieve superior sensitivity at low operating temperatures. The representative examples are hollow and urchin-like particles, mesoporous structures, and nanowire networks. These morphologies can generate abundant active surface sites with a high surface area and induce rapid gas diffusion and facile charge transport. For growing interests in environmental and healthcare monitoring, p-type oxide semiconductors and their heterojunctions with well-designed nanostructures gain much attention as advanced gas sensing materials for practical applications. In addition to precise nanostructure design, the combination with other strategies, e.g. light activation and multiple gas sensing analysis using sensor arrays will be able to fabricate the desired gas sensors with exclusive gas detection at ultra-low concentrations operating even at room temperature.
机译:金属氧化物半导体有宽的带隙可裁制成衣的电特性和高稳定,适合chemiresistive气体传感器。灵敏度比他们少了n型同行但提供独特的功能较低的湿度依赖性。方法提高p型特征,活性材料的纳米结构是至关重要的表现出高的传感性能具有可比性n型材料。形成可以达到优越的敏感性较低操作温度。例子是空心和urchin-like粒子,介孔结构和纳米线网络。这些形态可以生成丰富的活动网站具有高的表面积和表面诱导快速气体扩散和灵巧的电荷传输。种植在环境和利益医疗监测、p型氧化物半导体及其垂直精心设计的纳米结构获得关注作为实用先进的气体传感材料应用程序。与其他纳米结构设计、组合策略,如光激活和多个气体传感分析使用传感器阵列能够制造所需的气体传感器在超低独家气体检测浓度操作甚至在房间温度。

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