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双梳状石英增强光声光谱技术

Dual-comb quartz-enhanced photoacoustic spectroscopy.

作者信息

Ren Xinyi, Yan Ming, Wen Zhaoyang, Ma Hui, Li Ran, Huang Kun, Zeng Heping

机构信息

State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai 200062, China.

Chongqing Key Laboratory of Precision Optics, Chongqing Institute of East China Normal University, Chongqing 401120, China.

出版信息

Photoacoustics. 2022 Sep 21;28:100403. doi: 10.1016/j.pacs.2022.100403. eCollection 2022 Dec.

Abstract

Photoacoustic spectroscopy (PAS) using two optical combs is a new-born technique, offering appealing features, including broad optical bandwidths, high resolutions, fast acquisition speeds, and wavelength-independent photoacoustic detection, for chemical sensing. However, its further application to, e.g., trace detection, is jeopardized due to the fundamentally and technically limited sensitivity and specificity. Here, we take a different route to comb-enabled PAS with acoustically enhanced sensitivity and nonlinear spectral hole-burning defined resolution. We demonstrate dual-comb quartz-enhanced PAS with two near-infrared electro-optic combs and a quartz tuning fork. Comb-line-resolved multiplexed spectra are acquired for acetylene with a single-pass detection limit at the parts-per-billion level. The technique is further extended to the mid-infrared (for methane), enabling improved sensitivity. More importantly, we measure nonlinear dual-comb photoacoustic spectra for the CH ν + ν band P(17) transition with sub-Doppler pressure-broadening dominated homogeneous linewidths (e.g., 45.8 MHz), hence opening up new opportunities for Doppler-free photoacoustic gas sensing.

摘要

使用两个光学频率梳的光声光谱技术(PAS)是一项新兴技术,具有吸引人的特性,包括宽光学带宽、高分辨率、快速采集速度以及与波长无关的光声检测,可用于化学传感。然而,由于其在本质和技术上的灵敏度和特异性有限,它在诸如痕量检测等方面的进一步应用受到了阻碍。在此,我们采用了一条不同的途径来实现基于频率梳的光声光谱技术,该技术具有声学增强的灵敏度和由非线性光谱烧孔定义的分辨率。我们展示了使用两个近红外电光频率梳和一个石英音叉的双梳石英增强光声光谱技术。获得了乙炔的梳状线分辨复用光谱,其单通道检测限达到十亿分之一水平。该技术进一步扩展到中红外波段(用于检测甲烷),从而提高了灵敏度。更重要的是,我们测量了CH ν + ν带P(17)跃迁的非线性双梳光声光谱,其具有亚多普勒压力展宽主导的均匀线宽(例如45.8 MHz),因此为无多普勒光声气体传感开辟了新机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a2b/9508165/fc3f20981f7b/gr1.jpg

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