Wu Guojie, Wu Xue, Gong Zhenfeng, Xing Jiawei, Fan Yeming, Ma Junsheng, Peng Wei, Yu Qingxu, Mei Liang
Opt Express. 2023 Oct 9;31(21):34213-34223. doi: 10.1364/OE.502733.
We report, what we believe to be, a novel miniaturized 3D-printed Y-type resonant photoacoustic cell (YRPAC) consisting of a frustum of cone-type buffer chamber and a cylindrical resonant chamber. The volume of the designed YRPAC is about 7.0 cm, which is only about a half of the T-resonant photoacoustic cell (TRPAC). The finite element simulation of the sound field distribution of the TRPAC and YRPAC based on COMSOL shows that the photoacoustic signal is enhanced with the shape of the buffer chamber changing from the traditional cylinder to a frustum of cone. The photoacoustic spectroscopy (PAS) system, utilizing the YRPAC and TRPAC as the photoacoustic reaction units, a 1653.7 nm distributed feedback (DFB) laser as the excitation light source, a cantilever beam acoustic sensor as the acoustic sensing unit, and a high-speed spectrometer as the demodulation unit, has been successfully developed for high-sensitivity trace CH sensing. When the CH concentration is 1000 ppm, the 2f signal of YRPAC in the first-order resonance mode is 2.3 nm, which is 1.7 times higher than the 2f signal amplitude of TRPAC. The detection sensitivity and minimum detection limit for the PAS system are 2.29 pm/ppm and 52.8 parts per billion (ppb) at 100 s of averaging time. The reported YRPAC has higher sensitivity, smaller size, and faster response time compared to the conventional TRPAC, which can provide a new solution for PAS development.
我们报道了一种我们认为新颖的小型化3D打印Y型共振光声池(YRPAC),它由一个截头圆锥型缓冲腔和一个圆柱形共振腔组成。所设计的YRPAC的体积约为7.0立方厘米,仅约为T型共振光声池(TRPAC)的一半。基于COMSOL对TRPAC和YRPAC的声场分布进行的有限元模拟表明,随着缓冲腔形状从传统的圆柱体变为截头圆锥体,光声信号得到增强。利用YRPAC和TRPAC作为光声反应单元、1653.7纳米分布反馈(DFB)激光器作为激发光源、悬臂梁声学传感器作为声学传感单元以及高速光谱仪作为解调单元的光声光谱(PAS)系统已成功开发用于高灵敏度痕量CH传感。当CH浓度为1000 ppm时,YRPAC在一阶共振模式下的2f信号为2.3纳米,比TRPAC的2f信号幅度高1.7倍。该PAS系统在平均时间为100秒时的检测灵敏度和最低检测限分别为2.29皮米/ppm和52.8十亿分之一(ppb)。与传统的TRPAC相比,所报道的YRPAC具有更高的灵敏度、更小的尺寸和更快的响应时间,可为PAS的发展提供新的解决方案。