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Electrical conductivity and gas-sensing properties of Mg-doped and undoped single-crystalline In2O3 thin films: bulk vs. surface

机译:Mg掺杂和未掺杂的单晶In2O3薄膜的导电性和气体感测性能:散装与表面

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This study aims to provide a better fundamental understanding of the gas-sensing mechanism of In2O3-based conductometric gas sensors. In contrast to typically used polycrystalline films, we study single crystalline In2O3 thin films grown by molecular beam epitaxy (MBE) as a model system with reduced complexity. Electrical conductance of these films essentially consists of two parallel contributions: the bulk of the film and the surface electron accumulation layer (SEAL). Both these contributions are varied to understand their effect on the sensor response. Conductance changes induced by UV illumination in air, which forces desorption of oxygen adatoms on the surface, give a measure of the sensor response and show that the sensor effect is only due to the SEAL contribution to overall conductance. Therefore, a strong sensitivity increase can be expected by reducing or eliminating the bulk conductivity in single crystalline films or the intra-grain conductivity in polycrystalline films. Gas-response measurements in ozone atmosphere test this approach for the real application.
机译:本研究旨在为in2O3的电导气体传感器的气体传感机制提供更好的基础知识。与通常使用的多晶膜相比,我们研究由分子束外延(MBE)生长的单晶In2O3薄膜作为具有降低复杂性的模型系统。这些薄膜的电导基本上由两个平行贡献组成:膜的大部分和表面电子累积层(密封)。这两种贡献都有所多地了解它们对传感器响应的影响。 UV照明在空气中诱导的电导变化,从而强制氧吸附物在表面上的解吸,给出了传感器响应的量度,并表明传感器效果仅是由于对整体电导的贡献。因此,通过减少或消除单晶膜中的散装电导率或多晶膜中的晶粒内电导率,可以预期强敏感性增加。臭氧大气中的气体反应测量测试了真实应用的方法。

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