新しいレーザーコームが高精度化学物質検出を実現(New laser comb can enable rapid identification of chemicals with extreme precision)

2025-08-20 マサチューセッツ工科大学(MIT)

MITの研究チームは、化学物質を極めて正確かつ迅速に識別できる小型の「赤外線レーザー周波数コム」を開発した。従来の分光器は大型で複雑な装置を必要としたが、本研究では分散補償用の「二重チャーブドミラー(DCM)」をレーザーに直接組み込み、外部機器を不要にしてチップサイズでの実装を可能にした。これにより、広帯域かつ安定した赤外線コムを発生でき、環境中の化学物質や大気汚染物質をリアルタイムで高精度に検出できる。開発には精密ナノ製造技術とオンチップ分散測定技術が用いられ、従来は困難だった超広帯域での周波数コム生成に成功した。小型で量産可能なセンサーとして応用が期待され、環境モニタリング、産業現場の安全管理、国家安全保障など幅広い分野に役立つ。成果は『Light: Science & Applications』に掲載され、DARPAやゴードン&ベティ・ムーア財団の支援を受けた。本技術は、光学分光を携帯デバイスに搭載する未来を拓くものである。

新しいレーザーコームが高精度化学物質検出を実現(New laser comb can enable rapid identification of chemicals with extreme precision)The comb uses a double-chirped mirror (DCM), pictured, which is a special type of optical mirror that has multiple layers with thicknesses that change gradually from one end to the other. Image: Courtesy of the researchers

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超広帯域空気誘電体二重チープドミラーを用いたレーザー周波数コム Ultrabroadband air-dielectric double-chirped mirrors for laser frequency combs

Tianyi Zeng,Yamac Dikmelik,Feng Xie,Kevin Lascola,David Burghoff & Qing Hu
Light: & Science Applications  Published:19 August 2025
DOI:https://doi.org/10.1038/s41377-025-01961-4

Abstract

Dispersion engineering is critical for the creation of integrated broadband laser frequency combs. In the long wavelength infrared range (LWIR, 8-13 µm), frequency combs based on quantum cascade lasers are attractive since they are monolithic, fundamental oscillators with high power levels and efficiencies. One effective approach for expanding quantum cascade laser gain bandwidth is by stacking multiple gain media with different center lasing frequencies, as this leads to flatter broadband gain spectra. However, as the gain bandwidth is increased, dispersion becomes the main limiting factor for comb bandwidth. Therefore, achieving broadband combs requires schemes that can flexibly engineer the dispersion over broad bandwidths. Here, we demonstrate the ultimate nanophotonic dispersion compensation scheme: an air-dielectric slab double-chirped mirror, which we fully integrate with the quantum cascade laser gain section. This scheme relies on the highest possible index contrast and therefore provides the maximum correction per unit length over a very broad bandwidth. With this approach, we report the successful demonstration of a broadband room-temperature LWIR laser frequency comb on a gain medium that normally does not form combs without deliberate dispersion compensations. Our air-dielectric mirrors are versatile and can be extended to other integrated laser frequency combs in different material platforms and frequency bands.

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