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Influence of Mg Doping Levels on the Sensing Properties of SnO2 Films

机译:镁掺杂水平对SnO2薄膜传感性能的影响

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摘要

This work presents the effect of magnesium (Mg) doping on the sensing properties of tin dioxide (SnO ) thin films. Mg-doped SnO films were prepared via a spray pyrolysis method using three doping concentrations (0.8 at.%, 1.2 at.%, and 1.6 at.%) and the sensing responses were obtained at a comparatively low operating temperature (160 °C) compared to other gas sensitive materials in the literature. The morphological, structural and chemical composition analysis of the doped films show local lattice disorders and a proportional decrease in the average crystallite size as the Mg-doping level increases. These results also indicate an excess of Mg (in the samples prepared with 1.6 at.% of magnesium) which causes the formation of a secondary magnesium oxide phase. The films are tested towards three volatile organic compounds (VOCs), including ethanol, acetone, and toluene. The gas sensing tests show an enhancement of the sensing properties to these vapors as the Mg-doping level rises. This improvement is particularly observed for ethanol and, thus, the gas sensing analysis is focused on this analyte. Results to 80 ppm of ethanol, for instance, show that the response of the 1.6 at.% Mg-doped SnO film is four times higher and 90 s faster than that of the 0.8 at.% Mg-doped SnO film. This enhancement is attributed to the Mg-incorporation into the SnO cell and to the formation of MgO within the film. These two factors maximize the electrical resistance change in the gas adsorption stage, and thus, raise ethanol sensitivity.
机译:这项工作提出了镁(Mg)掺杂对二氧化锡(SnO)薄膜的传感特性的影响。通过喷雾热解方法使用三种掺杂浓度(0.8 at。%,1.2 at。%和1.6 at。%)制备掺Mg的SnO薄膜,并且在相对较低的工作温度(160°C)下获得了感应响应与文献中的其他气体敏感材料相比。掺杂膜的形态,结构和化学组成分析显示,随着Mg掺杂水平的提高,局部晶格紊乱和平均晶粒尺寸成比例下降。这些结果还表明了Mg的过量(在用1.6at。%的镁制备的样品中),这导致了第二氧化镁相的形成。该膜针对三种挥发性有机化合物(VOC)进行了测试,包括乙醇,丙酮和甲苯。气体感测测试表明,随着Mg掺杂水平的提高,对这些蒸气的感测特性也随之增强。对于乙醇尤其观察到这种改善,因此,气体感测分析集中在这种分析物上。例如,对80 ppm乙醇的测试结果表明,掺有1.6 at。%的Mg的SnO薄膜的响应比掺有0.8 at。%的Mg的SnO薄膜的响应高出四倍,快90 s。这种增强归因于Mg掺入SnO电池中以及薄膜中MgO的形成。这两个因素使气体吸附阶段的电阻变化最大化,从而提高了乙醇敏感性。

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