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用于激发表面等离子体共振以实现高灵敏度磁场传感的光子晶体光纤设计。

Design of photonic crystal fiber to excite surface plasmon resonance for highly sensitive magnetic field sensing.

作者信息

Wang Dongying, Yu Yang, Lu Zhechun, Yang Junbo, Yi Zao, Bian Qiang, Zhang Jianfa, Qin Shangpeng, Weng Junjie, Yao Siyu, Lu Yang, Hu Xiaoyang, Meng Zhou

出版信息

Opt Express. 2022 Aug 1;30(16):29271-29286. doi: 10.1364/OE.459088.

Abstract

To improve the sensing performance of optical fiber magnetic field sensor based on magneto-refractive effect, a D-shaped photonic crystal fiber-surface plasmon resonance (PCF-SPR) sensor based on magneto-refractive effect is proposed and its magnetic field sensing characteristics are investigated. The designed D-shaped PCF has a core-analyte-gold structure. Within the D-shaped PCF, the side polishing surface is coated with the gold film and the special hole is sandwiched between the core and the gold film. To realize the high magnetic field sensitivity for the fiber SPR magnetic field sensor, the special hole is filled with magnetic fluid (MF). In this paper, we analyze the mode transmission characteristics and magnetic field sensing characteristics of this fiber sensor by finite element method. We also obtain a general rule for the optimization of PCF-SPR sensors by analyzing the dispersion curves, the energy of the surface plasmon polariton mode and the core mode on the sensing performance of the designed fiber sensor. The maximum refractive index sensitivity and magnetic field sensitivity of the optimized fiber are 59714.3 nm/RIU and 21750 pm/mT (50-130 Oe), respectively. Compared with optical fiber magnetic field sensors based on magneto-refractive effect reported previously, the magnetic field sensitivity in this paper is nearly two orders of magnitude higher and it can initially achieve nT magnitude magnetic field resolution and testing capability. The proposed fiber sensor has the advantages of simple structure, easy production, high sensitivity, and strong environmental adaptability. It not only improves the sensing performance of optical fiber magnetic field sensors, but also provides an ideal alternative platform for biosensors like microfluidics because of its high refractive index sensitivity and the special structure.

摘要

为了提高基于磁光效应的光纤磁场传感器的传感性能,提出了一种基于磁光效应的D形光子晶体光纤表面等离子体共振(PCF-SPR)传感器,并对其磁场传感特性进行了研究。所设计的D形光子晶体光纤具有纤芯-分析物-金结构。在D形光子晶体光纤中,侧面抛光表面涂有金膜,特殊的孔夹在纤芯和金膜之间。为了实现光纤表面等离子体共振磁场传感器的高磁场灵敏度,在特殊孔中填充了磁流体(MF)。本文通过有限元方法分析了这种光纤传感器的模式传输特性和磁场传感特性。通过分析色散曲线、表面等离子体激元模式和纤芯模式的能量对所设计光纤传感器传感性能的影响,我们还得到了光子晶体光纤表面等离子体共振传感器优化的一般规律。优化后的光纤最大折射率灵敏度和磁场灵敏度分别为59714.3 nm/RIU和21750 pm/mT(50 - 130 Oe)。与之前报道的基于磁光效应的光纤磁场传感器相比,本文中的磁场灵敏度提高了近两个数量级,初步实现了纳特斯拉量级的磁场分辨率和测试能力。所提出的光纤传感器具有结构简单、易于制作、灵敏度高、环境适应性强等优点。它不仅提高了光纤磁场传感器的传感性能,还因其高折射率灵敏度和特殊结构为微流控等生物传感器提供了一个理想的替代平台。

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