空气激光辅助相干拉曼光谱的高灵敏度气体检测

Zhihao Zhang, Fangbo Zhang, Bo Xu, Hongqiang Xie, B. Fu, Xu Lu, Ning Zhang, Shupeng Yu, J. Yao, Ya Cheng, Zhi‐zhan Xu
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引用次数: 53

摘要

近年来,利用创新的超快激光技术对温室气体、空气污染物和生物制剂进行远程或远距离检测引起了人们越来越多的兴趣。飞秒/皮秒混合相干拉曼光谱由于其在检测灵敏度和化学特异性方面的巨大优势而被认为是最通用的技术之一。然而,飞秒泵浦和皮秒探头的同步要求增加了光学系统的复杂性。在此,我们证明了在灯丝内部自然产生的空气激光可以作为理想的光源来探测飞秒泵浦激发的拉曼相干性,产生具有分子振动特征的相干拉曼信号。在成丝过程中,脉冲自压缩效应与空气激光作用的结合提高了拉曼激发效率,大大简化了实验装置。利用空气激光辅助拉曼光谱技术对混合在空气中的温室气体进行定量检测,发现CO2和SF6的最低检测浓度分别可达0.1%和0.03%。巧妙的设计,特别是泵子延迟的优化和垂直偏振的选择,保证了高的检测灵敏度和信号稳定性。结果表明,该方法可用于同时测量CO2和SF6气体,并可区分12CO2和13CO2。该方案为高灵敏度的燃阻检测和燃烧诊断提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-Sensitivity Gas Detection with Air-Lasing-Assisted Coherent Raman Spectroscopy
Remote or standoff detection of greenhouse gases, air pollutants, and biological agents with innovative ultrafast laser technology attracts growing interests in recent years. Hybrid femtosecond/picosecond coherent Raman spectroscopy is considered as one of the most versatile techniques due to its great advantages in terms of detection sensitivity and chemical specificity. However, the simultaneous requirement for the femtosecond pump and the picosecond probe increases the complexity of optical system. Herein, we demonstrate that air lasing naturally created inside a filament can serve as an ideal light source to probe Raman coherence excited by the femtosecond pump, producing coherent Raman signal with molecular vibrational signatures. The combination of pulse self-compression effect and air lasing action during filamentation improves Raman excitation efficiency and greatly simplifies the experimental setup. The air-lasing-assisted Raman spectroscopy was applied to quantitatively detect greenhouse gases mixed in air, and it was found that the minimum detectable concentrations of CO2 and SF6 can reach 0.1% and 0.03%, respectively. The ingenious designs, especially the optimization of pump-seed delay and the choice of perpendicular polarization, ensure a high detection sensitivity and signal stability. Moreover, it is demonstrated that this method can be used for simultaneously measuring CO2 and SF6 gases and distinguishing 12CO2 and 13CO2. The developed scheme provides a new route for high-sensitivity standoff detection and combustion diagnosis.
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CiteScore
11.40
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