Wang Xianfan, Zhang Jiquan, Tian Ke, Wang Shunbin, Yuan Libo, Lewis Elfed, Farrell Gerald, Wang Pengfei
Opt Express. 2018 Oct 1;26(20):26534-26543. doi: 10.1364/OE.26.026534.
A novel, MMI-based all-fiber structure, which consists of two single-mode fibers and a multimode fiber polished on both sides, is described. The light propagation characteristics of this fiber structure, as well as its superior sensing performance, are analyzed theoretically by using the beam propagation method (BPM). This fiber structure demonstrates a significant spectral response to changes of the surrounding refractive index (RI), and the measured results exhibit good agreement with the predicted data. The measured average RI sensitivity is as high as 151.29 nm/RIU over an RI range from 1.3450 to 1.4050, when the polished depth is 30 µm on both sides of the multimode fiber. This fiber structure can be an advantageous platform for various applications, especially for a lab-on-fiber type sensing application.
本文描述了一种基于多模干涉(MMI)的新型全光纤结构,它由两根单模光纤和一根两面都经过抛光的多模光纤组成。利用光束传播法(BPM)从理论上分析了这种光纤结构的光传播特性及其卓越的传感性能。这种光纤结构对周围折射率(RI)的变化表现出显著的光谱响应,测量结果与预测数据吻合良好。当多模光纤两侧的抛光深度为30 µm时,在1.3450至1.4050的RI范围内测得的平均RI灵敏度高达151.29 nm/RIU。这种光纤结构可成为各种应用的有利平台,特别是对于光纤实验室型传感应用。