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February 24, 2026Optics & Laser Technology1 citationsOpen Access

Integration of PANI-SnO2 heterojunctions with portable optical microfibre for advanced operando ammonia gas sensing

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HLHui LiWHWei HuJDJing Dai

Key Points

  • The aim is to develop a high-performance gas sensing device using a p-n heterojunction and optical microfibre.
  • Integration of n-type SnO2 and p-type polyaniline on optical microfibre surface
  • Room temperature fabrication
  • Measurement of ammonia gas sensitivity and response time
  • Achieved a sensitivity of 3.98 pm/ppm for ammonia gas
  • Demonstrated a theoretical limit of detection of 15.2 ppm
  • Measured an ultrafast response time of 11 s and recovery time of 7 s

Abstract

In this work, we propose a synergistic framework between a p-n heterojunction and an optical microfibre for gas sensing, in which an n-type semiconductor, SnO 2 , and a p-type semiconductor, polyaniline (PANI), form on surface of the optical microfibre at room temperature. Owing to the strong interaction between evanescent waves and carriers of semiconductors, the device could detect ammonia gas with a high sensitivity of 3.98 pm/ppm and an extremely low theoretical limit of detection (LOD) of 15.2 ppm. Importantly, its ultrafast response time is experimentally achieved at 11 s with a recovery time of 7 s, which is lower than those of most reported ammonia gas sensing technologies. Based on the proposed innovative integration of optical fibre with a p-n heterojunction sensing strategy, this work could provide a new way to promote more high-performance hybrid optical and semiconductor sensing platforms.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/699d3f9ede8e28729cf644dehttps://doi.org/10.1016/j.optlastec.2026.114941
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