Cavity-Enhanced Vernier Spectroscopy with a Chip-Scale Mid-Infrared Frequency Comb
Abstract
Chip-scale optical frequency combs can provide broadband spectroscopy for diagnosing complex organic molecules. They are also promising as miniaturized laser spectrometers in applications ranging from atmospheric chemistry to geological science and the search for extraterrestrial life. While optical cavities are commonly used to boost sensitivity, it is challenging to realize a compact cavity-enhanced comb-based spectrometer. Here, we apply the Vernier technique to free-running operation of an interband cascade laser frequency comb in a simple linear geometry that performs cavity-enhanced chemical sensing. A centimeter-scale high-finesse cavity simultaneously provides selective mode filtering and enhancement of the path length to 30 meters. As a proof-of-concept, we sense transient open-path releases of ppm-level difluoroethane with 2 ms temporal resolution over a 1 THz optical bandwidth centered at 3.64 m.
Keywords
Cite
@article{arxiv.2112.03977,
title = {Cavity-Enhanced Vernier Spectroscopy with a Chip-Scale Mid-Infrared Frequency Comb},
author = {Lukasz A. Sterczewski and Tzu-Ling Chen and Douglas C. Ober and Charles R. Markus and Chadwick L. Canedy and Igor Vurgaftman and Clifford Frez and Jerry R. Meyer and Mitchio Okumura and Mahmood Bagheri},
journal= {arXiv preprint arXiv:2112.03977},
year = {2024}
}
Comments
10 pages, 5 figures