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流动增强光热光谱法

Flow-Enhanced Photothermal Spectroscopy.

作者信息

Radeschnig Ulrich, Bergmann Alexander, Lang Benjamin

机构信息

Institute of Electrical Measurement and Sensor Systems, Graz University of Technology, 8010 Graz, Austria.

出版信息

Sensors (Basel). 2022 Sep 21;22(19):7148. doi: 10.3390/s22197148.

Abstract

Photothermal spectroscopy (PTS) is a promising sensing technique for the measurement of gases and aerosols. PTS systems using a Fabry-Pérot interferometer (FPI) are considered particularly promising owing to their robustness and potential for miniaturization. However, limited information is available on viable procedures for signal improvement through parameter tuning. In our work, we use an FPI-based PTS configuration, in which the excitation laser irradiates the target collinearly to the flowing gas. We demonstrate that the generated thermal wave, and thus the signal intensity, is significantly affected by the ratio between excitation modulation frequency and gas flow velocity towards another. We provide an analytical model that predicts the signal intensity with particular considerations of these two parameter settings and validate the findings experimentally. The results reveal the existence of an optimal working regime, depending on the modulation frequency and flow velocity.

摘要

光热光谱法(PTS)是一种很有前景的用于测量气体和气溶胶的传感技术。使用法布里-珀罗干涉仪(FPI)的PTS系统因其稳健性和小型化潜力而被认为特别有前景。然而,关于通过参数调整来改善信号的可行程序的信息有限。在我们的工作中,我们使用基于FPI的PTS配置,其中激发激光与流动气体共线照射目标。我们证明,所产生的热波以及信号强度,会受到激发调制频率与气体流速之比的显著影响。我们提供了一个分析模型,该模型在特别考虑这两个参数设置的情况下预测信号强度,并通过实验验证了这些发现。结果揭示了存在一个取决于调制频率和流速的最佳工作状态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9039/9570771/4fb37de347d4/sensors-22-07148-g001.jpg

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