High-resolution HO2 radical detection by optical feedback linear cavity-enhanced absorption spectroscopy

IF 2 3区 物理与天体物理 Q3 OPTICS Applied Physics B Pub Date : 2024-07-24 DOI:10.1007/s00340-024-08283-0
Yang Chen, Nana Yang, Bo Fang, Weixiong Zhao, Weijun Zhang, Shuangshuang Li, Weihua Cui
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Abstract

We report the development of an optical feedback linear cavity-enhanced absorption spectroscopy instrument for HO2 detection using a distributed feedback (DFB) diode laser operating at 1506 nm. A direct and accurate method of reflectivity measurement based on the analysis of cavity mode signals was proposed. A differential circuit was used to judge the zero crossing point of the optical feedback cavity mode in the center of the frequency locking region, and shift the laser operating current to the non-resonant region. In this way, a ring-down signal was obtained with a time of 17.9 μs, corresponding to an effective absorption pathlength of 5.37 km. Combining the standing wave condition, the relationship between cavity length and drive voltage of the PZT mounted on the cavity rear mirror is translated into a correlation between the transmitted light wavenumber and the PZT voltage. The spectral resolution was improved from 290 MHz to 97 MHz by precisely tuning the PZT voltage. The achieved detection sensitivity of the system was 7 × 10− 10 cm− 1 with a data acquisition time of 10.6 s. The absorption spectrum of HO2 at 6638.205 cm− 1 was measured at a cell pressure of 50 mbar with a detection limit of 3.24 × 109 molecule/cm3.

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利用光反馈线性空腔增强吸收光谱法进行高分辨率 HO2 自由基检测
我们报告了利用波长为 1506 nm 的分布式反馈 (DFB) 二极管激光器开发的用于检测 HO2 的光反馈线性空穴增强吸收光谱仪器。我们提出了一种基于空腔模式信号分析的直接而精确的反射率测量方法。利用差分电路来判断位于频率锁定区域中心的光反馈空腔模式的过零点,并将激光工作电流转移到非谐振区域。通过这种方法,获得了时间为 17.9 μs 的环降信号,对应的有效吸收路径长度为 5.37 km。结合驻波条件,空腔长度与安装在空腔后反射镜上的 PZT 驱动电压之间的关系转化为透射光波长与 PZT 电压之间的相关性。通过精确调节 PZT 电压,光谱分辨率从 290 MHz 提高到 97 MHz。该系统的检测灵敏度为 7 × 10- 10 cm- 1,数据采集时间为 10.6 秒。在样品池压力为 50 毫巴时,在 6638.205 cm- 1 处测量了 HO2 的吸收光谱,检测限为 3.24 × 109 个分子/立方厘米。
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来源期刊
Applied Physics B
Applied Physics B 物理-光学
CiteScore
4.00
自引率
4.80%
发文量
202
审稿时长
3.0 months
期刊介绍: Features publication of experimental and theoretical investigations in applied physics Offers invited reviews in addition to regular papers Coverage includes laser physics, linear and nonlinear optics, ultrafast phenomena, photonic devices, optical and laser materials, quantum optics, laser spectroscopy of atoms, molecules and clusters, and more 94% of authors who answered a survey reported that they would definitely publish or probably publish in the journal again Publishing essential research results in two of the most important areas of applied physics, both Applied Physics sections figure among the top most cited journals in this field. In addition to regular papers Applied Physics B: Lasers and Optics features invited reviews. Fields of topical interest are covered by feature issues. The journal also includes a rapid communication section for the speedy publication of important and particularly interesting results.
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