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用于实时健康监测和诊断的超高灵敏多物种光谱呼吸分析。

Ultrasensitive multispecies spectroscopic breath analysis for real-time health monitoring and diagnostics.

机构信息

JILA, National Institute of Standards and Technology and University of Colorado Boulder, Boulder, CO 80309.

Department of Physics, University of Colorado Boulder, Boulder, CO 80309.

出版信息

Proc Natl Acad Sci U S A. 2021 Oct 5;118(40). doi: 10.1073/pnas.2105063118.

Abstract

Breath analysis enables rapid, noninvasive diagnostics, as well as long-term monitoring of human health, through the identification and quantification of exhaled biomarkers. Here, we demonstrate the remarkable capabilities of mid-infrared (mid-IR) cavity-enhanced direct-frequency comb spectroscopy (CE-DFCS) applied to breath analysis. We simultaneously detect and monitor as a function of time four breath biomarkers-[Formula: see text]OH, [Formula: see text], [Formula: see text]O, and HDO-as well as illustrate the feasibility of detecting at least six more ([Formula: see text]CO, [Formula: see text], OCS, [Formula: see text], [Formula: see text], and [Formula: see text]) without modifications to the experimental apparatus. We achieve ultrahigh detection sensitivity at the parts-per-trillion level. This is made possible by the combination of the broadband spectral coverage of a frequency comb, the high spectral resolution afforded by the individual comb teeth, and the sensitivity enhancement resulting from a high-finesse cavity. Exploiting recent advances in frequency comb, optical coating, and photodetector technologies, we can access a large variety of biomarkers with strong carbon-hydrogen-bond spectral signatures in the mid-IR.

摘要

呼气分析通过识别和定量呼出的生物标志物,实现了快速、非侵入性的诊断,以及对人体健康的长期监测。在这里,我们展示了中红外(mid-IR)腔增强直接频率梳光谱(CE-DFCS)在呼气分析中的出色应用能力。我们同时检测和监测作为时间函数的四个呼气生物标志物-[Formula: see text]OH、[Formula: see text]、[Formula: see text]O 和 HDO-并说明了在不修改实验设备的情况下检测至少另外六个([Formula: see text]CO、[Formula: see text]、OCS、[Formula: see text]、[Formula: see text]和[Formula: see text])的可行性。我们实现了超灵敏的检测灵敏度,达到了万亿分之几的水平。这是通过梳状频率的宽带光谱覆盖、单个梳齿提供的高光谱分辨率以及高精细腔产生的灵敏度增强相结合实现的。利用频率梳、光学涂层和光电探测器技术的最新进展,我们可以在 mid-IR 中访问具有强碳氢键光谱特征的各种生物标志物。

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本文引用的文献

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