Self‑Powered All‑Fiber Hydrogen Sensor via Whispering Gallery Mode Microcavity and Built‑in Electric Field Synergy

Fiber‑optic hydrogen sensors offer intrinsic safety and remote operation, yet their application is constrained by expensive spectrometers and complex demodulation. Here, we present a self-powered all‑fiber hydrogen sensor (SAHS) that integrates optical excitation, electrical readout and gas detection on a single fiber tip, enabling remote and room‑temperature sensing at zero bias. By constructing a whispering gallery mode (WGM)-enhanced lateral ZnO/PEDOT:PSS n-p heterojunction on the fiber tip, we achieve synergy between the localized optical field and the built‑in electric field. The WGM microcavity confines and recycles incident light, markedly enhancing light-matter interaction and photogeneration on the tiny fiber tip. Meanwhile, the lateral built‑in field efficiently dissociates the photogenerated carriers, producing a substantial photocurrent without any external voltage. The self‑powered sensor exhibits outstanding room‑temperature H2 detection under 380 nm light excitation upon Pd functionalization, with a detection limit of ∼19 ppm and response/recovery times of 30 s and 7 s, respectively. This light‑activated, electrically‑read‑out architecture eliminates costly optical demodulation equipment, offering a low‑cost, user‑friendly and intrinsically safe solution for advanced hydrogen energy monitoring.

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Publication Details

Journal
ACS Sensors
Published
2026-10-04
DOI
https://doi.org/10.1021/acssensors.6c03580
Primary Topic
Advanced Fiber Optic Sensors
Type
article
Field-Weighted Citation Impact
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article

Self‑Powered All‑Fiber Hydrogen Sensor via Whispering Gallery Mode Microcavity and Built‑in Electric Field Synergy

Yuansheng Yin, Liang Huang, Daotong You, Tuan Guo et al.
ACS Sensors
Advanced Fiber Optic Sensors
article

Self‑Powered All‑Fiber Hydrogen Sensor via Whispering Gallery Mode Microcavity and Built‑in Electric Field Synergy

Yuansheng Yin, Liang Huang, Daotong You, Tuan Guo, Jie Mao, Zhibo Li, Minghui Du, Wanjun Li, Shuang Shang, Jianle Huang, Ying Liu, Yiyang Qin
article en

Abstract

Fiber‑optic hydrogen sensors offer intrinsic safety and remote operation, yet their application is constrained by expensive spectrometers and complex demodulation. Here, we present a self-powered all‑fiber hydrogen sensor (SAHS) that integrates optical excitation, electrical readout and gas detection on a single fiber tip, enabling remote and room‑temperature sensing at zero bias. By constructing a whispering gallery mode (WGM)-enhanced lateral ZnO/PEDOT:PSS n-p heterojunction on the fiber tip, we achieve synergy between the localized optical field and the built‑in electric field. The WGM microcavity confines and recycles incident light, markedly enhancing light-matter interaction and photogeneration on the tiny fiber tip. Meanwhile, the lateral built‑in field efficiently dissociates the photogenerated carriers, producing a substantial photocurrent without any external voltage. The self‑powered sensor exhibits outstanding room‑temperature H2 detection under 380 nm light excitation upon Pd functionalization, with a detection limit of ∼19 ppm and response/recovery times of 30 s and 7 s, respectively. This light‑activated, electrically‑read‑out architecture eliminates costly optical demodulation equipment, offering a low‑cost, user‑friendly and intrinsically safe solution for advanced hydrogen energy monitoring.

ACS Sensors
Jinan University (CN), Guilin University of Electronic Technology (CN)
Openalex Percentile: Top 22%
Advanced Fiber Optic Sensors
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