Zhou Cheng, Zhou Qian, Wang Bo, Tian Jiajun, Yao Yong
Opt Express. 2021 Apr 12;29(8):11854-11868. doi: 10.1364/OE.421060.
This study experimentally demonstrates a high-sensitivity fiber-optic relative humidity (RH) sensor based on sensitivity amplification and a reduction mechanism, employing an internal-external Fabry-Perot cavity (IEFPC) Vernier effect and a chitosan film as a Fabry-Perot (FP)-sensing cavity. The proposed sensor is constructed using cascaded FP interferometers comprised of an air cavity formed by a hollow-core fiber (HCF), a chitosan cavity, and an air-chitosan hybrid cavity. The chitosan cavity is fabricated by dipping the HCF into a chitosan solution to form a thin chitosan film. Thus, the thickness of the chitosan film could be controlled precisely based on dipping time and capillary effect. As the optical path lengths of an air-chitosan hybrid cavity and an air cavity are similar, the IEFPC Vernier effect is generated, amplifying the air-chitosan hybrid cavity's low sensitivity to the chitosan cavity's high sensitivity. The experimental results agree with the theoretical analysis, supporting the fact that the sensor's sensitivity is related only to the thickness of the chitosan film. The sensitivity of the sensor reaches up to 7.15 nm/% RH, ranging 40%-92% RH at 25°C. Fabrication of the proposed sensor is cost-effective. The proposed sensor also exhibits superior stability performance, a low-temperature cross-sensitivity of 0.0068% RH/°C, and repeatable fabrication. The proposed IEFPC Vernier effect model functions well for cascaded cavities, which plays a guiding role in the sensitivity improvement of such a structure within a fiber-optic sensing context.
本研究通过实验展示了一种基于灵敏度放大和降低机制的高灵敏度光纤相对湿度(RH)传感器,该传感器采用内外法布里 - 珀罗腔(IEFPC)游标效应,并以壳聚糖膜作为法布里 - 珀罗(FP)传感腔。所提出的传感器由级联的FP干涉仪构成,包括由空心光纤(HCF)形成的空气腔、壳聚糖腔以及空气 - 壳聚糖混合腔。壳聚糖腔是通过将HCF浸入壳聚糖溶液中以形成薄壳聚糖膜来制备的。因此,壳聚糖膜的厚度可基于浸渍时间和毛细作用精确控制。由于空气 - 壳聚糖混合腔和空气腔的光程长度相似,会产生IEFPC游标效应,将空气 - 壳聚糖混合腔对壳聚糖腔的低灵敏度放大为高灵敏度。实验结果与理论分析相符,支持了传感器灵敏度仅与壳聚糖膜厚度相关这一事实。该传感器在25°C时的灵敏度高达7.15 nm/%RH,测量范围为40% - 92%RH。所提出的传感器制造具有成本效益。该传感器还表现出卓越的稳定性性能、0.0068%RH/°C的低温交叉灵敏度以及可重复制造性。所提出的IEFPC游标效应模型对级联腔效果良好,在光纤传感环境中对这种结构的灵敏度提升具有指导作用。