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Enhanced methanol sensing properties of SnO2 microspheres in a composite with Pt nanoparticles

机译:用PT纳米粒子复合材料中SnO2微球的增强甲醇感测性能

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SnO _(2) microspheres in a composite with Pt nanoparticles (0, 0.5, 1.5, 2.5, 5.0 mol% Pt loading) were synthesized by a solvothermal method. The crystal structure, morphology, and specific surface area were thoroughly characterized. It is found that the Pt–SnO _(2) nanocomposites consist of a large amount of small spheres with average diameters up to hundreds of nanometers, and every small sphere is composed of numerous primary nanocrystallites with an average size of about 8 nm. Compared with the pristine SnO _(2) , the presence of Pt nanoparticles has no influence on the growth behavior of the SnO _(2) microspheres. The gas sensors based SnO _(2) microspheres in a composite with Pt nanoparticles not only show a lower operating temperature and immensely enhanced responses, but also exhibit a faster response and recovery speeds and remarkable stability to methanol, especially the 5.0 mol% Pt–SnO _(2) nanocomposite. The gas sensor based on the 5.0 mol% Pt–SnO _(2) nanocomposite exhibits a response value of 190.88 to 100 ppm methanol at a low operating temperature of 80 °C, while the gas sensor based on pristine SnO _(2) only displayed a response value of 19.38 at an operating temperature of 200 °C. The reasonable explanation of the gas-sensing performance enhancement for the gas sensors based on Pt–SnO _(2) nanocomposites is attributed to the strong spillover effect of the Pt nanoparticles and the electronic interaction between Pt nanoparticles and SnO _(2) microspheres, both of which promoted the low temperature gas-sensing performance.
机译:通过溶剂热法合成具有Pt纳米颗粒(0,0.5,1.5,2.5,5.0mol%Pt加载)的复合材料中的SnO _(2)微球。彻底表征了晶体结构,形态和比表面积。发现Pt-SnO _(2)纳米复合材料由具有高达数百纳米的平均直径的大量小球体组成,每个小球体由众多初级纳米晶体组成,平均尺寸为约8nm。与原始SnO _(2)相比,Pt纳米颗粒的存在对SnO _(2)微球的生长行为没有影响。基于SnO _(2)的气体传感器在具有Pt纳米粒子的复合材料中的微球不仅显示出较低的工作温度和巨大增强的反应,而且还表现出更快的反应和恢复速度和对甲醇的显着稳定性,特别是5.0mol%pt- SnO _(2)纳米复合材料。基于5.0mol%Pt-SnO _(2)纳米复合材料的气体传感器在80°C的低工作温度下表现出190.88至100ppm甲醇的响应值,而仅基于原始SnO _(2)的气体传感器在工作温度为200°C时显示响应值19.38。基于Pt-SnO _(2)纳米复合材料的气体传感器的气体感测性能提高的合理说明归因于Pt纳米颗粒的强溢出效应和Pt纳米粒子和SnO _(2)微球之间的电子相互作用,这两者都促进了低温气体传感性能。

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