Li Chun-guang, Dang Jing-min, Li Jian, Fu Li, Chen Chen, Wang Yi-ding
Guang Pu Xue Yu Guang Pu Fen Xi. 2016 May;36(5):1291-5.
According to the principle of mid-infrared absorption spectrum, the fundamental absorption characteristics at the wavelength of 7.5 μm of methane (CH4) molecule was used to design a mid-infrared quantum cascaded laser (QCL) and multi-pass gas cell (MPC)-based methane gas sensor. This sensor uses a thermoelectrically cooled, pulse mode QCL whose central wavelength is 7.5 μm. The QCL wavelength was scanned over CH4 absorption line (1 332.8 cm-1)through adjusting the injection current under the condition of room temperature. Meanwhile, a compact MPC (40 cm long and 800 mL sampling volume) was utilized to achieve an effective optical path length of 16 meters. Additionally, a reference gas cell was occupied and joined a spatial filtering optical structure to meet the requirement of MPC in incidence beam, effectively improved the beam quality, reduced the noise which is caused by the fluctuation of QCL and improved the detection sensitivity of this instrument under the guidance of differential optical absorption spectroscopy method. It indicated that the stability of this instrument is good by means of multiple measurements to the methane gas with different concentration, a detection limit of 1 μmol·mol-1 will be obtained when the signal-to-noise ratio equals 1.
根据中红外吸收光谱原理,利用甲烷(CH4)分子在7.5μm波长处的基本吸收特性,设计了一种基于中红外量子级联激光器(QCL)和多程气室(MPC)的甲烷气体传感器。该传感器采用热电冷却的脉冲模式QCL,其中心波长为7.5μm。在室温条件下,通过调节注入电流使QCL波长扫描甲烷吸收线(1332.8 cm-1)。同时,采用一个紧凑的MPC(长40 cm,采样体积800 mL),实现了16米的有效光程长度。此外,设置了一个参考气室并加入空间滤波光学结构,以满足MPC对入射光束的要求,有效改善了光束质量,降低了由QCL波动引起的噪声,并在差分光学吸收光谱法的指导下提高了该仪器的检测灵敏度。通过对不同浓度甲烷气体的多次测量表明该仪器稳定性良好,当信噪比等于1时,检测限可达1μmol·mol-1。