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基于反射式θ型微光纤谐振腔与 Vernier 效应协同的折射率传感灵敏度可控传感器。

Sensitivity-controllable refractive index sensor based on reflective θ-shaped microfiber resonator cooperated with Vernier effect.

机构信息

School of Optical and Electronic Information, National Engineering Laboratory for Next Generation Internet Access System, Huazhong University of Science and Technology, Wuhan, 430074, Hubei, China.

CINTRA CNRS/NTU/THALES, Singapore, 637553, Singapore.

出版信息

Sci Rep. 2017 Aug 29;7(1):9620. doi: 10.1038/s41598-017-10163-x.

Abstract

In this paper, we report a sensitivity-controllable refractive index (RI) sensor based on a reflective θ-shaped microfiber resonator cooperated with Vernier effect. The θ-shaped microfiber resonator is a reflective all-fiber device with comb spectrum under weak coupling condition. By cascading it with a fiber Fabry-Perot interferometer, Vernier effect is generated to demodulate surrounding RI with enhanced sensitivity. Theoretical analysis reveals that RI sensitivity of the combined structure with Vernier effect is m times higher than the sensitivity of singular θ-shaped microfiber resonator. Moreover, by adjusting cavity length of the θ-shaped microfiber resonator, magnification factor M = (m + 1) can be tuned which enables the RI sensitivity to be controlled. Experimental result demonstrates that the RI sensitivity can be widely tuned from 311.77 nm/RIU (Reflective index unit) to 2460.07 nm/RIU when the cavity length of the θ-shaped microfiber resonator is adjusted from 9.4 mm to 8.7 mm. The θ-shaped microfiber resonator based all-fiber RI sensor featuring controllable sensitivity and compact size can be widely used for chemical and biological detections. The proposed scheme of generating Vernier effect also offers a universal idea to increase measurement sensitivity for optical fiber sensing structures with comb spectrum.

摘要

本文提出了一种基于反射式θ型微环谐振腔与 Vernier 效应相结合的可调谐折射率(RI)传感器。θ型微环谐振腔在弱耦合条件下具有梳状光谱,是一种全光纤反射式器件。通过与光纤法布里-珀罗干涉仪级联,可产生 Vernier 效应,从而提高灵敏度来解调周围的 RI。理论分析表明,具有 Vernier 效应的组合结构的 RI 灵敏度比单个 θ型微环谐振腔的灵敏度高 m 倍。此外,通过调节 θ型微环谐振腔的腔长,可以调谐放大因子 M=(m+1),从而实现 RI 灵敏度的控制。实验结果表明,当 θ型微环谐振腔的腔长从 9.4mm 调整到 8.7mm 时,RI 灵敏度可从 311.77nm/RIU(折射率单位)宽范围调谐至 2460.07nm/RIU。该基于 θ型微环谐振腔的全光纤 RI 传感器具有可调谐灵敏度和紧凑尺寸的特点,可广泛应用于化学和生物检测领域。所提出的产生 Vernier 效应的方案也为具有梳状光谱的光纤传感结构提高测量灵敏度提供了一种通用思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4d0/5574978/f1b49b0c4f4f/41598_2017_10163_Fig1_HTML.jpg

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