Dual slow-light enhanced photothermal gas spectroscopy on a silicon chip.

Zheng, Kaiyuan; Peng, Zihang; Liao, Hanyu; Huang, Yijun; Bao, Haihong; Zhao, Shuangxiang; Zhang, Yu; Zheng, Chuantao et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

Integrated photonic sensors have attracted significant attention recently for their potential for high-density integration. However, they face challenges in sensing gases with high sensitivity due to weak light-gas interaction. Slow light, which dramatically intensifies light-matter interaction through spatial compression of optical energy, provides a promising solution. Herein, we demonstrate a dual slow-light scheme for enhancing the sensitivity of photothermal spectroscopy (PTS) with a suspended photonic crystal waveguide (PhCW) on a CMOS-compatible silicon platform. By tailoring the dispersion of the PhCW to generate structural slow light to enhance pump absorption and probe phase modulation, we achieve a photothermal efficiency of 3.6 × 10<sup>-4</sup> rad·cm·ppm<sup>-1</sup> · mW<sup>-1</sup> · m<sup>-1</sup>, over 1 - 3 orders of magnitude higher than the strip waveguides and optical fibers. With a 1-mm-long sensing PhCW incorporated in a stabilized on-chip Mach-Zehnder interferometer with a footprint of 0.6 mm<sup>2</sup>, we demonstrate acetylene detection with a sensitivity of 1.4 × 10<sup>-6</sup> in terms of noise-equivalent absorption and length product (NEA · L), the best among the reported photonic waveguide gas sensors to our knowledge. The dual slow-light enhanced PTS paves the way for integrated photonic gas sensors with high sensitivity, miniaturization, and cost-effective mass production.