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April 30, 2026ACS Omega0 citationsOpen Access

Slow-Light Mid-IR Silicon Photonic Chips for NO 2 and CH 4 Gas Detection

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KFKang-Chieh FanJMJason MidkiffMHMay Hlaing

Key Points

  • This research aims to develop a compact gas sensor using silicon photonic technology for detecting nitrogen dioxide and methane.
  • Developed a silicon-on-insulator photonic crystal waveguide chip with a hexagonal lattice structure.
  • Conducted experiments with gas mixtures using mass flow controllers and acquired signals with an InSb detector.
  • Evaluated sensor performance for NO2 and CH4 across defined concentration ranges.
  • NO2 detection showed a linear response over 5–25 ppm with R2 = 0.9934 and a limit of detection at 210 ppb.
  • Exposing the sensor to 25 ppm CH4 led to a 6.4% decrease in transmitted intensity, demonstrating multigas sensing capability.

Abstract

A compact, chip-scale mid-infrared gas sensor is demonstrated, leveraging a two-dimensional photonic crystal waveguide (PCW) fabricated on a silicon-on-insulator (SOI) platform. The PCW comprises a hexagonal lattice with lattice constant a = 860 nm and hole radius r = 0.22a, incorporating a central line defect of reduced-radius holes (rs = 0.7r) to induce slow-light propagation near the photonic band edge with a group index of approximately 73, thereby enhancing light-matter interaction. The sensor operates at fundamental absorption wavelengths of 3.42 μm for nitrogen dioxide (NO2) and 3.40 μm for methane (CH4), utilizing the strongest molecular vibrational transitions for maximum sensitivity. Experimental validation was conducted using dynamically diluted gas mixtures generated by mass flow controllers, with signal acquisition performed by a liquid nitrogen-cooled InSb detector. For NO2, the sensor exhibited excellent linear response over 5–25 ppm (part per million) with coefficient of determination R2 = 0.9934, achieving a detection limit of 210 ppb (part per billion)─representing the first reported silicon photonic-based NO2 detection. For CH4, exposure to 25 ppm resulted in a 6.4% decrease in transmitted intensity, demonstrating multigas sensing capability. The CMOS-compatible fabrication process and compact 3 mm device footprint establish this SOI-PCW platform as a scalable, low-power solution for integrated mid-infrared gas sensing, with significant potential for environmental monitoring and industrial safety applications.

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Cite This Study

Fan et al. (2026) studied this question.

synapsesocial.com/papers/69f2f1471e5f7920c6386ff5https://doi.org/10.1021/acsomega.5c13205
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