法布里-珀罗干涉仪
材料科学
光纤
芯(光纤)
光热治疗
光学
纤维
光电子学
复合材料
纳米技术
物理
波长
作者
Jingwen Wu,Pengcheng Zhao,Haihong Bao,Hoi Lut Ho,Wei Jin
标识
DOI:10.1109/jlt.2025.3595618
摘要
Photothermal spectroscopy is a promising gas detection technique, providing high selectivity, high sensitivity, and wide dynamic range. Here, we systematically investigate the temperature-dependent behavior of the photothermal signal in a compact hollow-core fiber gas sensor in a Fabry–Pérot cavity configuration. Temperature affects the absorption properties of the target gas, the thermal characteristics of the gas medium, as well as the stability of in-cavity pump power via multi-path interference, thereby impacting the photothermal signal. Rigorous theoretical formulation and experimental investigation are carried out. With an 11-cm-long hollow-core fiber, we achieved a detection limit of $\sim$1 ppb acetylene at room temperature. By optimizing the wavelength modulation amplitude to minimize the in-cavity pump power fluctuation and using a temperature compensation scheme, we reduce the signal variation from $\sim$48% to $\sim$2% over a wide temperature range of 256-354 K, demonstrating good adaptability of the technique under different temperature conditions.
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