首页> 外文会议>SPIE Defense + Security Conference >Optical parametric oscillator-based trace detection of gases in the mid- infrared region using phase-fluctuation optical heterodyne spectroscopy
【24h】

Optical parametric oscillator-based trace detection of gases in the mid- infrared region using phase-fluctuation optical heterodyne spectroscopy

机译:使用相位波动光学外差光谱法基于光学参量振荡器的中红外区域气体痕量检测

获取原文

摘要

Laser absorption spectroscopy utilizes a tunable infrared source, providing the necessary selectivity, to detect the characteristic fingerprint spectral absorption of an abundant gas. In a simple embodiment such as single-pass absorption, sensitivity is limited as attenuation becomes minuscule for trace level concentrations; a problem exacerbated in the mid-infrared region due to significant detector noise. Sensitivity can be improved by increasing interaction between the optical field and molecular ensemble with methods such as a multiple-pass Herriot cell or resonant cavity ring-down spectroscopy but these techniques have a substantial overhead in instrumentation. An alternative approach to this problem is Phase Fluctuation Optical Heterodyne (PFLOH) spectroscopy. Here, interferometric effects are used to detect the minute heating of the sample gas when incident laser light of the appropriate wavelength is absorbed. More specifically, by placing the absorption chamber within one arm of a Mach-Zehnder interferometer, heat-induced changes in the optical path length can be detected with great sensitivity through the resulting fringe modulation. A secondary benefit is that although excitation occurs in the infrared, its effects can be detected using visible lasers and silicon detectors, thereby obviating the need for cooled, infrared detectors. We will present our results used to detect ethane using absorption in the 3.33-3.37 μm region. The Mach-Zehnder interferometer used a Helium Neon laser for the probe laser, and a broadly tunable Optical Parametric Oscillator (OPO) for spectroscopic excitation. We have demonstrated detection levels at parts per billion with further sensitivity possible by implementing several identified improvements.
机译:激光吸收光谱利用可调谐红外源,提供必要的选择性,以检测丰富的气体的特征指纹光谱吸收。在诸如单通吸收的简单的实施方案中,灵敏度受到限制,因为衰减变得微量浓度的微量浓度;由于显着的探测器噪声,中红外区域在中红外区域恶化的问题。通过增加光场和分子组织的相互作用,可以提高灵敏度,用诸如多遍海希管或谐振腔循环光谱光谱分谱,但这些技术在仪器中具有大量的开销。该问题的替代方法是相波动光学杂差(PFLOH)光谱。这里,在适当波长的入射激光被吸收时,使用干涉效果来检测样品气体的微小加热。更具体地,通过将​​吸收室放置在Mach-Zehnder干涉仪的一个臂内,可以通过所得到的条纹调制以极大的灵敏度来检测光路长度的热引起的变化。二次利益是,尽管在红外发生激发,但是可以使用可见激光器和硅探测器检测其效果,从而避免了对冷却的红外探测器的需求。我们将在3.33-3.37μm区域中使用吸收来展示我们用于检测乙烷的结果。 Mach-Zehnder干涉仪用氦氖激光器用于探针激光器,以及用于光谱激发的广泛可调光学参数振荡器(OPO)。我们通过实施几个确定的改进,我们已经展现了每十亿零件的检测水平。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号