Wang Jiapeng, Wu Hongpeng, Sampaolo Angelo, Patimisco Pietro, Spagnolo Vincenzo, Jia Suotang, Dong Lei
State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan, 030006, China.
Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, 030006, China.
Light Sci Appl. 2024 Mar 22;13(1):77. doi: 10.1038/s41377-024-01425-1.
The extension of dual-comb spectroscopy (DCS) to all wavelengths of light along with its ability to provide ultra-large dynamic range and ultra-high spectral resolution, renders it extremely useful for a diverse array of applications in physics, chemistry, atmospheric science, space science, as well as medical applications. In this work, we report on an innovative technique of quartz-enhanced multiheterodyne resonant photoacoustic spectroscopy (QEMR-PAS), in which the beat frequency response from a dual comb is frequency down-converted into the audio frequency domain. In this way, gas molecules act as an optical-acoustic converter through the photoacoustic effect, generating heterodyne sound waves. Unlike conventional DCS, where the light wave is detected by a wavelength-dependent photoreceiver, QEMR-PAS employs a quartz tuning fork (QTF) as a high-Q sound transducer and works in conjunction with a phase-sensitive detector to extract the resonant sound component from the multiple heterodyne acoustic tones, resulting in a straightforward and low-cost hardware configuration. This novel QEMR-PAS technique enables wavelength-independent DCS detection for gas sensing, providing an unprecedented dynamic range of 63 dB, a remarkable spectral resolution of 43 MHz (or ~0.3 pm), and a prominent noise equivalent absorption of 5.99 × 10cm·Hz.
双梳光谱技术(DCS)能够覆盖所有光波长,并具备提供超大动态范围和超高光谱分辨率的能力,这使其在物理、化学、大气科学、空间科学以及医学应用等众多领域极为有用。在本工作中,我们报告了一种创新技术——石英增强多外差共振光声光谱技术(QEMR-PAS),其中双梳的拍频响应被下变频到音频域。通过这种方式,气体分子通过光声效应充当光声转换器,产生外差声波。与传统的DCS不同,传统DCS中光波由波长依赖的光接收器检测,而QEMR-PAS采用石英音叉(QTF)作为高Q值的声换能器,并与相敏探测器协同工作,从多个外差声频中提取共振声分量,从而实现简单且低成本的硬件配置。这种新颖的QEMR-PAS技术实现了用于气体传感的与波长无关的DCS检测,提供了前所未有的63 dB动态范围、43 MHz(或约0.3 pm)的出色光谱分辨率以及5.99×10⁻⁹ cm·Hz的显著噪声等效吸收。