Feng Dingyi, Jiang Biqiang, Jiang Yajun, Zhao Jianlin
Appl Opt. 2021 Jan 10;60(2):433-437. doi: 10.1364/AO.416003.
An optical fiber directional-bend sensor based on an inline Mach-Zehnder interferometer is proposed and demonstrated. The device consists of a piece of a multimode fiber (MMF) splicing with a polarization-maintaining photonic crystal fiber (PMPCF) and sandwiched by lead in/out single-mode fibers (SMFs). Owing to the larger diameter of the MMF, some high-order modes in fiber are efficiently coupled and transmitted through the PMPCF, and finally interfere with each other in the output SMFs. The experimental results show that a well-defined interference fringe envelope can be obtained in the transmitted spectrum and, when the fiber is bent, both the intensity and the fringe visibility of the interference pattern are changed with the bending curvature. Meanwhile, the bend sensitivities are varied with different bending directions, and the maximum sensitivity is achieved up to -8.33/ within the bend range from 0 to 1.7. The proposed device also demonstrates a very low-intensity cross-talk of environment temperature.
提出并演示了一种基于在线马赫-曾德尔干涉仪的光纤定向弯曲传感器。该装置由一段多模光纤(MMF)与保偏光子晶体光纤(PMPCF)熔接而成,并夹在输入/输出单模光纤(SMF)之间。由于多模光纤直径较大,光纤中的一些高阶模被有效地耦合并通过保偏光子晶体光纤传输,最终在输出单模光纤中相互干涉。实验结果表明,在透射光谱中可以获得清晰的干涉条纹包络,当光纤弯曲时,干涉图案的强度和条纹可见度都会随弯曲曲率而变化。同时,弯曲灵敏度随弯曲方向的不同而变化,在0至1.7的弯曲范围内,最大灵敏度可达-8.33/。所提出的装置还表现出非常低的环境温度强度串扰。