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基于气球型光声池的多光程反射增强用于痕量气体传感

Multiple optical path length reflections enhancement based on balloon-type photoacoustic cell for trace gas sensing.

作者信息

Wu Ruiming, Ni Wenjun, Yang Chunyong, He Bingze, Lu Ping, Ran Sixiang, Zhao Zhongke, Shum Perry Ping

机构信息

Hubei Key Laboratory of Intelligent Wireless Communications, Hubei Engineering Research Center of Intelligent IOT technology, College of Electronics and Information Engineering, South-Central Minzu University, 430074, China.

Wuhan National Laboratory for Optoelectronics (WNLO) and National Engineering Research Center of Next Generation Internet Access System, School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

Photoacoustics. 2024 Dec 18;41:100681. doi: 10.1016/j.pacs.2024.100681. eCollection 2025 Feb.

Abstract

A novel balloon-type photoacoustic cell (BTPAC) is proposed to facilitate the detection limitations of acetylene (CH) gas achieving ppb level. Here, an ellipsoidal photoacoustic cavity is employed as the platform for gas-light interaction. By strategically directing the excitation source towards the focal point of the ellipsoidal cavity, ensuring its trajectory traverses the focal point upon each reflection from the interior walls. This path increases the gas absorption path length and improves the efficiency of the laser-gas interaction process. Experimental results show that the quality factor of the BTPAC is 224.24 under normal temperature and pressure conditions. Notably, the system maintains a high signal-to-noise ratio even at a CH concentration of 0.1 ppm. Moreover, the minimum detection limit (MDL) and normalized noise equivalent absorption can be calculated to be 3.86 ppb, 6.94·10 cm·W·Hz, respectively. Finally, the MDL of the sensor reaches to 0.71 ppb when the integration time reaches 100 s.

摘要

提出了一种新型气球型光声池(BTPAC),以克服乙炔(CH)气体检测局限性,实现ppb级检测。在此,采用椭圆形光声腔作为气体-光相互作用的平台。通过将激发源策略性地导向椭圆形腔的焦点,确保其轨迹在每次从内壁反射时都穿过焦点。此路径增加了气体吸收路径长度,提高了激光-气体相互作用过程的效率。实验结果表明,在常温常压条件下,BTPAC的品质因数为224.24。值得注意的是,即使在CH浓度为0.1 ppm时,该系统仍保持高信噪比。此外,最小检测限(MDL)和归一化噪声等效吸收分别计算为3.86 ppb、6.94·10 cm·W·Hz。最后,当积分时间达到100 s时,传感器的MDL达到0.71 ppb。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e3f/11731772/8793d9a27ef5/gr1.jpg

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