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用于检测高度复杂气体的调制衰荡梳状干涉测量法。

Modulated ringdown comb interferometry for sensing of highly complex gases.

作者信息

Liang Qizhong, Bisht Apoorva, Scheck Andrew, Schunemann Peter G, Ye Jun

机构信息

JILA, National Institute of Standards and Technology and University of Colorado, Boulder, CO, USA.

BAE Systems, Nashua, NH, USA.

出版信息

Nature. 2025 Feb;638(8052):941-948. doi: 10.1038/s41586-024-08534-2. Epub 2025 Feb 19.

Abstract

Gas samples relevant to health and the environment typically contain many molecular species that span a huge concentration dynamic range. Mid-infrared frequency comb spectroscopy with high-finesse cavity enhancement has allowed the most sensitive multispecies trace-gas detections so far. However, the robust performance of this technique depends critically on ensuring absorption-path-length enhancement over a broad spectral coverage, which is severely limited by comb-cavity frequency mismatch if strongly absorbing compounds are present. Here we introduce modulated ringdown comb interferometry, a technique that resolves the vulnerability of comb-cavity enhancement to strong intracavity absorption or dispersion. This technique works by measuring ringdown dynamics carried by massively parallel comb lines transmitted through a length-modulated cavity, making use of both the periodicity of the field dynamics and the Doppler frequency shifts introduced from a Michelson interferometer. As a demonstration, we measure highly dispersive exhaled human breath samples and ambient air in the mid-infrared with finesse improved to 23,000 and coverage to 1,010 cm. Such a product of finesse and spectral coverage is orders of magnitude better than all previous demonstrations, enabling us to simultaneously quantify 20 distinct molecular species at above 1-part-per-trillion sensitivity varying in concentrations by seven orders of magnitude. This technique unlocks next-generation sensing performance for complex and dynamic molecular compositions, with scalable improvement to both finesse and spectral coverage.

摘要

与健康和环境相关的气体样本通常包含许多分子种类,其浓度动态范围跨度极大。具有高精细度腔增强的中红外频率梳光谱技术实现了迄今为止最灵敏的多物种痕量气体检测。然而,该技术的稳健性能关键取决于在宽光谱范围内确保吸收路径长度的增强,而如果存在强吸收化合物,梳状腔频率失配会严重限制这一点。在此,我们介绍调制衰荡梳干涉测量法,这是一种解决梳状腔增强对腔内强吸收或色散的脆弱性的技术。该技术通过测量由大量平行梳状线携带的衰荡动力学来工作,这些梳状线通过长度调制腔传输,利用了场动力学的周期性和迈克尔逊干涉仪引入的多普勒频移。作为演示,我们在中红外波段测量了高色散的人体呼出气体样本和环境空气,精细度提高到23000,覆盖范围达到1010厘米。这样的精细度和光谱覆盖范围的乘积比以往所有演示都要好几个数量级,使我们能够以高于万亿分之一的灵敏度同时定量20种不同的分子种类,其浓度变化达七个数量级。该技术为复杂和动态的分子组成开启了下一代传感性能,在精细度和光谱覆盖范围方面都有可扩展的改进。

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