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Effect of heterogeneous catalytic methane oxidation on kinetics of conductivity response of adsorption semiconductor sensors based on Pd/SnO2 nanomaterial

机译:异质催化甲烷氧化对基于PD / SNO2纳米材料的吸附半导体传感器电导率响应动力学的影响

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摘要

Nanosized semiconductive Pd-containing sensor materials based on SnO2 were obtained by sol-gel technique. The highly sensitive gas sensor based on 1.41wt% Pd/SnO2 nanomaterial showed the maximum response value of 12.4 to 930ppm CH4, and the kinetics of the sensor conductivity response and recovery were studied. The average particle size of the material with the highest response to methane was 14-15nm. Study of the CH4 oxidation kinetics on the surface of the 1.41wt% Pd/SnO2 sensor nanomaterial allowed the proposal of a theoretical model that can describe the kinetics of the conductivity response and recovery for such Pd-doped sensors to methane. The values of the methane oxidation activation energies obtained from the experimental kinetic data for the CH4 oxidation reaction on the 1.41wt% Pd/SnO2 gas-sensitive material and the model based on the data of the sensor conductivity response and recovery were almost the same, indicating a leading role for the heterogeneous catalytic oxidation reaction occurring on the sensor surface.
机译:通过溶胶 - 凝胶技术获得基于SnO2的含纳米半导体Pd的传感器材料。基于1.41wt%pd / snO2纳米材料的高敏感气体传感器显示最大响应值为12.4至930ppm ch4,并研究了传感器电导率反应和恢复的动力学。具有最高反应甲烷的材料的平均粒径为14-15nm。 CH4氧化动力学对1.41wt%pd / snO2传感器纳米材料的表面允许理论模型的提议,其可以描述导电性响应动力学和对甲烷这种Pd掺杂传感器的回收率的恢复。从基于传感器导电响应响应和恢复的数据的基于1.41wt%pd / snO2气敏材料和模型的CH4氧化反应获得的甲烷氧化活化能量的值几乎相同,表示在传感器表面上发生的异质催化氧化反应的主要作用。

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