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Competitive influence of surface area and mesopore size on gas-sensing properties of SnO2 hollow fibers

机译:表面积和中孔尺寸对SnO2中空纤维气敏性能的竞争影响

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In this work, the effects of surface area and mesopore size on gas-sensing properties of SnO2 hollow microfibers assembled by nanocrystals were investigated. When the sintering time was increased from 2 to 24 h, the specific surface area (SSA) of SnO2 microfibers decreased from 103.6 to 59.8 m(2) g(-1), whereas the mesopore diameter gradually increased from 2.8 to 10.9 nm. Interestingly, it was found that their gas-sensing properties to ppb-level formaldehyde were determined by both SSA and mesopore size. The gas response increased firstly and then decreased with decreasing SSA and increasing mesopore size and reached the maximum value when the sintering time was 11 h. When the sintering time was < 11 h, mesopore size (< 8.5 nm) dominated sensing behavior by controlling gas diffusion rate. Once the sintering time was more than 11 h, the decreased SSA (< 70.8 m(2) g(-1)) dominated sensing performance by influencing the surface reaction activity. Therefore, the competitive influence of surface area and mesopore size on gas-sensing properties of mesoporous SnO2 microfibers was revealed. This work could provide a new understanding for microstructural design of the mesoporous gas-sensing metal oxide materials.
机译:在这项工作中,研究了表面积和中孔尺寸对由纳米晶体组装的SnO2中空微纤维的气敏性能的影响。当烧结时间从2小时增加到24小时时,SnO2超细纤维的比表面积(SSA)从103.6减少到59.8 m(2)g(-1),而中孔直径从2.8 nm逐渐增加到10.9 nm。有趣的是,发现它们对ppb级甲醛的气敏特性是由SSA和中孔尺寸决定的。当烧结时间为11 h时,气体响应随SSA的减小和中孔尺寸的增大先增大,然后减小,并达到最大值。当烧结时间<11 h时,中孔尺寸(<8.5 nm)通过控制气体扩散速率主导了传感行为。一旦烧结时间超过11小时,减少的SSA(<70.8 m(2)g(-1))将通过影响表面反应活性来主导传感性能。因此,揭示了表面积和中孔尺寸对中孔SnO2超细纤维的气敏性能的竞争影响。这项工作可以为介孔气体传感金属氧化物材料的微观结构设计提供新的认识。

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