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首页> 外文期刊>Sensors and Actuators >Multi-component optical sensing of high temperature gas streams using functional oxide integrated silica based optical fiber sensors
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Multi-component optical sensing of high temperature gas streams using functional oxide integrated silica based optical fiber sensors

机译:使用功能性氧化物集成二氧化硅基光纤传感器对高温气流进行多组分光学传感

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摘要

In-situ monitoring of the multi-component gas streams in high temperature energy conversion devices offer the promises to higher efficiency via improved understanding of the chemical environments during device operation. While conventional resistive based metal oxide semiconductor gas sensors suffer from strong cross-sensitivity, optical sensing approaches offer intrinsic advantages to achieve gas selectivity based on wavelength specific interactions. This manuscript describes a novel method to achieve multicomponent gas sensing during gas exposure of H_2, CO_2, CH_4 and CO in humid high temperature environments. A single sensor element comprised of a perovskite La_(0.3)Sr_(0.7)TiO_3 (LST0) oxide thin film layer coated on silica optical fiber was used. The sensing responses consisted of two wavelength-specific near infrared (NIR) mechanisms, namely broadband absorption associated with the metal oxide layer, and wavelength localized thermal emission responses associated with the hydroxyl defects within the silica fiber. Principal component analysis (PCA) was applied to couple the two mechanisms to achieve selective gas identification. Successful discrimination of H_2 and CO_2 on a single fiber sensor was achieved, where the results are both stable and reversible. This design demonstrates that by coupling multiple optical mechanisms on a single oxide coated fiber sensor, simple platforms can also achieve multi-component sensing functionality without the added complexity of a sensor array. Thus, it suggests a new approach to construct simple, robust and functional sensor designs capable of gas discrimination and quantification in multi-component gas streams.
机译:在高温能量转换设备中对多组分气流进行原位监测,有望通过提高对设备运行过程中化学环境的了解来提高效率。尽管常规的基于电阻的金属氧化物半导体气体传感器具有很强的交叉灵敏度,但是光学传感方法具有固有的优势,可以基于特定波长的相互作用实现气体选择性。该手稿描述了一种在潮湿的高温环境下暴露H_2,CO_2,CH_4和CO的过程中实现多组分气体传感的新颖方法。使用由涂覆在二氧化硅光纤上的钙钛矿La_(0.3)Sr_(0.7)TiO_3(LST0)氧化物薄膜层组成的单个传感器元件。感测响应包括两种特定于波长的近红外(NIR)机制,即与金属氧化物层相关的宽带吸收和与石英纤维内的羟基缺陷相关的波长局部热发射响应。应用主成分分析(PCA)来耦合这两种机制,以实现选择性气体识别。在单个光纤传感器上成功识别出H_2和CO_2,结果既稳定又可逆。该设计表明,通过在单个氧化物涂层的光纤传感器上耦合多种光学机制,简单的平台也可以实现多组件传感功能,而不会增加传感器阵列的复杂性。因此,它提出了一种新的方法来构造能够对多组分气流中的气体进行判别和定量的简单,耐用且功能强大的传感器设计。

著录项

  • 来源
    《Sensors and Actuators》 |2018年第1期|357-365|共9页
  • 作者单位

    National Energy Technology Laboratory. Pittsburgh, PA, USA,Oak Ridge Institute for Science and Engineering, USA;

    National Energy Technology Laboratory. Pittsburgh, PA, USA;

    National Energy Technology Laboratory. Pittsburgh, PA, USA,AECOM, Pittsburgh, PA, USA;

    National Energy Technology Laboratory. Pittsburgh, PA, USA,Oak Ridge Institute for Science and Engineering, USA;

    National Energy Technology Laboratory. Pittsburgh, PA, USA,Materials Science and Engineering Carnegie Mellon University, Pittsburgh, PA USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optical gas sensing; Silica fiber; Oxide; Selectivity; Pca;

    机译:光学气体感应;石英纤维氧化物选择性;聚氯乙烯;

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