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Correlated electron perovskite films for optical sensing applications

机译:用于光学传感应用的相关电子钙钛矿薄膜

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Advanced power generation technologies including solid oxide fuel cells require advancements in sensor technologies for efficient operation. Gas sensors for SOFC anode streams must be stable in high temperature and under reducing atmospheres. Optical sensing technologies offer the potential for good stability and sensing response under harsh conditions but are relatively new as compared to alternative sensing approaches and require significant developments in underlying device and enabling materials technology. In this paper, the near infrared optical sensing response of La_(0.8)Sr_(0.2)MnO_3, a representative correlated perovskite material, is presented. Hydrogen sensing performance was measured in laboratory scale sensing experiments in the range of 1-4% hydrogen. The effect of oxygen on sensor recovery behavior was also examined. The films show a large, recoverable response to the introduction of hydrogen to the gas stream. The results presented here suggest this unique class of materials is a strong candidate for future sensor development efforts targeted at optical sensor applications but also requires additional fundamental research to understand the mechanistic origin of observed optical sensing responses.
机译:包括固体氧化物燃料电池在内的先进发电技术需要传感器技术的进步才能实现高效运行。用于SOFC阳极流的气体传感器必须在高温和还原气氛下稳定。光学传感技术提供了在恶劣条件下实现良好稳定性和传感响应的潜力,但与替代传感方法相比,它们相对较新,并且需要对基础器件和支持材料技术进行重大改进。本文提出了代表性的相关钙钛矿材料La_(0.8)Sr_(0.2)MnO_3的近红外光学传感响应。氢感测性能是在实验室规模的感测实验中在1-4%的氢气范围内测量的。还检查了氧气对传感器恢复行为的影响。薄膜显示出对将氢气引入到气流中的大的,可恢复的响应。此处给出的结果表明,这种独特的材料类别是未来针对光学传感器应用的传感器开发工作的强大候选者,但还需要进行其他基础研究,以了解观察到的光学传感响应的机理。

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