Feng Shiling, Qiu Xuanbing, Guo Guqing, Zhang Enhua, He Qiusheng, He Xiaohu, Ma Weiguang, Fittschen Christa, Li Chuanliang
College of Environment and Safety, Taiyuan University of Science and Technology, Taiyuan 030024, China.
State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China.
Anal Chem. 2021 Mar 16;93(10):4552-4558. doi: 10.1021/acs.analchem.0c04995. Epub 2021 Mar 4.
A palm-sized laser spectrometer has been developed for detecting trace gases based on tunable diode laser absorption spectroscopy in combination with a novel double-layer toroidal cell. With the benefit of a homemade electronic system and compact optical design, the physical dimensions of the sensor are minimized to 24 × 15× 16 cm. A toroidal absorption cell, with 84 reflections in 2 layers for an effective optical path length of 8.35 m, was used to enhance the absorption signals of gaseous species. A homemade electronic system was designed for implementing a distributed feedback (DFB) diode laser controller, an analog lock-in amplifier, data acquisition, and communication. Calibration-free scanned wavelength modulation spectroscopy was employed to determine the concentration of the gas and reduce the random fluctuations from electronical noise and mechanical vibration. The measurement of CH in ambient air was demonstrated using a DFB laser at 1.653 μm. The rise time and fall time for renewing the gas mixture are approximately 16 and 14 s, respectively. Vibration and temperature tests have been carried out for verifying the performance of the spectrometer, and standard deviations of 0.38 ppm and 0.11 ppm for 20 ppm CH at different vibration frequencies and temperatures, respectively, have been determined. According to the Allan deviation analysis, the minimum detection limit for CH can reach 22 ppb at an integration time of 57.8 s. The continuous measurement of atmospheric CH for 2 days validated the feasibility and robustness of our laser spectrometer, providing a promising laser spectral sensor for deploying in unmanned aerial vehicles or mobile robots.
一种手掌大小的激光光谱仪已被开发出来,它基于可调谐二极管激光吸收光谱技术,并结合一种新型双层环形池来检测痕量气体。得益于自制的电子系统和紧凑的光学设计,该传感器的物理尺寸被最小化至24×15×16厘米。一个环形吸收池,两层共有84次反射,有效光程长度为8.35米,用于增强气态物质的吸收信号。设计了一个自制电子系统来实现分布式反馈(DFB)二极管激光控制器、模拟锁相放大器、数据采集和通信功能。采用免校准扫描波长调制光谱法来测定气体浓度,并减少电子噪声和机械振动产生的随机波动。利用1.653μm的DFB激光器演示了对环境空气中CH的测量。更新气体混合物的上升时间和下降时间分别约为16秒和14秒。已经进行了振动和温度测试以验证光谱仪的性能,在不同振动频率和温度下,对于20ppm的CH,分别确定其标准偏差为0.38ppm和0.11ppm。根据阿伦偏差分析,在积分时间为57.8秒时,CH的最低检测限可达到22ppb。对大气中的CH进行连续两天的测量验证了我们激光光谱仪的可行性和稳健性,为部署在无人机或移动机器人中提供了一种很有前景的激光光谱传感器。