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Thickness Dependency of Thin-Film Samaria-Doped Ceria for Oxygen Sensing

机译:薄膜Samaria掺杂二氧化铈对氧传感的厚度依赖性

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High-temperature oxygen sensors are widely used for exhaust gas monitoring in automobiles. This particular study explores the use of thin-film single crystalline samaria-doped ceria as the oxygen sensing material. Desired signal-to-noise ratio can be achieved in a material system with high conductance. From previous studies, it is established that 6 atomic percent samarium doping is the optimum concentration for thin-film samaria-doped ceria (SDC) to achieve high ionic conductivity. In this study, the conductance of the 6 atomic percent samaria-doped ceria (SDC) thin film is measured as a function of the sensing film thickness. Hysteresis and dynamic response of this sensing platform are tested for a range of oxygen pressures from 0.001 to 100 torr for temperatures above 673 K. An attempt has been made to understand the physics behind the thickness-dependent conductance of this sensing platform by developing a hypothetical operating model and through COMSOL simulations. This study can be used to identify the parameters required to construct a fast, reliable, and compact high-temperature oxygen sensor.
机译:高温氧气传感器广泛用于汽车尾气监测。这项特殊的研究探索了使用薄膜单晶掺杂samaria的二氧化铈作为氧传感材料的用途。在具有高电导的材料系统中可以实现所需的信噪比。根据先前的研究,可以确定,atomic掺杂原子百分比为薄膜掺杂samaria的二氧化铈(SDC)以实现高离子电导率的最佳浓度。在这项研究中,测量了6个原子百分比的掺杂samaria的二氧化铈(SDC)薄膜的电导率,该电导率是传感膜厚度的函数。对于673 K以上的温度,在0.001至100 torr的氧气压力范围内测试了该传感平台的磁滞和动态响应。已尝试通过提出假设来理解该传感平台的厚度依赖性电导背后的物理原理。操作模型并通过COMSOL仿真。该研究可用于确定构建快速,可靠和紧凑的高温氧气传感器所需的参数。

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