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Optimal Design of an Hourglass in-Fiber Air Fabry-Perot Microcavity—Towards Spectral Characteristics and Strain Sensing Technology

机译:沙漏光纤法布里-珀罗微腔的最佳设计-针对光谱特性和应变传感技术

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摘要

An hourglass in-fiber air microcavity Fabry-Perot interferometer is proposed in this paper, and its second reflecting surface of in-fiber microcavity is designed to be a concave reflector with the best curvature radius in order to improve the spectral characteristics. Experimental results proved that the extinction ratio of Fabry-Perot interferometer with cavity length of 60 μm and concave reflector radius of 60 μm is higher than for a rectangular Fabry-Perot interferometer with cavity length of 60 μm (14 dB: 11 dB). Theory and numerical simulation results show that the strain sensitivity of sensor can be improved by reducing the microcavity wall thickness and microcavity diameter, and when the in-fiber microcavity length is 40 μm, the microcavity wall thickness is 10 μm, the microcavity diameter is 20 μm, and the curvature radius of reflective surface II is 50 μm, the interference fringe contrast of is greater than 0.97, an Axial-pull sensitivity of 20.46 nm/N and resolution of 1 mN can be achieved in the range of 0–1 N axial tension. The results show that the performance of hourglass in-fiber microcavity interferometer is far superior to that of the traditional Fabry-Perot interferometer.
机译:本文提出了一种沙漏光纤空气微腔法布里-珀罗干涉仪,并将光纤微腔的第二反射面设计为曲率半径最佳的凹面反射镜,以改善光谱特性。实验结果表明,腔长为60μm,凹面反射器半径为60μm的Fabry-Perot干涉仪的消光比,比腔长为60μm的矩形Fabry-Perot干涉仪的消光比更高(14 dB:11 dB)。理论和数值模拟结果表明,减小微腔壁厚和微腔直径可以提高传感器的应变灵敏度,当光纤内微腔长度为40μm时,微腔壁厚为10μm,微腔直径为20 μm,反射面II的曲率半径为50μm,干涉条纹对比度大于0.97,在0–1 N范围内可实现20.46 nm / N的轴拉灵敏度和1 mN的分辨率轴向张力。结果表明,沙漏光纤微腔干涉仪的性能远远优于传统的Fabry-Perot干涉仪。

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