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基于带有后向反射腔的差分光声池的高灵敏度光声乙炔检测。

Highly sensitive photoacoustic acetylene detection based on differential photoacoustic cell with retro-reflection-cavity.

作者信息

Zhang Chu, Qiao Shunda, Ma Yufei

机构信息

National Key Laboratory of Science and Technology on Tunable Laser, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Photoacoustics. 2023 Feb 23;30:100467. doi: 10.1016/j.pacs.2023.100467. eCollection 2023 Apr.

Abstract

In this paper, a highly sensitive photoacoustic spectroscopy (PAS) sensor based on retro-reflection-cavity-enhanced differential photoacoustic cell (DPAC) is demonstrated for the first time. Acetylene (CH) was selected as the analyte. The DPAC was designed to effectively suppress noise and increase signal level. The retro-reflection-cavity consisted of two right-angle prisms was designed to reflect the incident light to realize four passes. The photoacoustic response of the DPAC was simulated and investigated based on the finite element method. Wavelength modulation and second harmonic demodulation technologies were applied for sensitive trace gas detection. The first-order resonant frequency of the DPAC was found to be 1310 Hz. The differential characteristics were investigated and the 2 signal amplitude for this CH-PAS sensor based on retro-reflection-cavity-enhanced DPAC had a 3.55 times improvement compared to the system without the retro-reflection-cavity. An Allan deviation analysis was performed to investigate the long-term stability of the system. The minimum detection limit (MDL) was measured to be 15.81 ppb with an integration time of 100 s.

摘要

本文首次展示了一种基于后向反射腔增强型差分光声池(DPAC)的高灵敏度光声光谱(PAS)传感器。选择乙炔(CH)作为分析物。DPAC旨在有效抑制噪声并提高信号水平。由两个直角棱镜组成的后向反射腔被设计用于反射入射光以实现四次通过。基于有限元方法对DPAC的光声响应进行了模拟和研究。波长调制和二次谐波解调技术被应用于灵敏的痕量气体检测。发现DPAC的一阶共振频率为1310赫兹。研究了差分特性,与没有后向反射腔的系统相比,这种基于后向反射腔增强型DPAC的CH-PAS传感器的信号幅度提高了3.55倍。进行了阿伦偏差分析以研究系统的长期稳定性。在积分时间为100秒时,测量的最低检测限(MDL)为15.81 ppb。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf63/9982609/85b6a91d40a1/gr1.jpg

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