School of Information Science and Engineering, Fudan University, 220 Handan Rd, Shanghai 200433, China.
Key Laboratory for Information Science of Electromagnetic Waves (MoE), Fudan University, 220 Handan Rd, Shanghai 200433, China.
Sensors (Basel). 2018 Jul 3;18(7):2129. doi: 10.3390/s18072129.
A novel high performance optical fiber refractive index (RI) sensor based on the hybrid transverse magnetic (TM) mode of Tamm plasmon polariton (TPP) and surface plasmon polariton (SPP) is proposed. The structure of the sensor is a multi-mode optical fiber with a one dimensional photonic crystal (1 DPC)/metal multi-films outer coated on its fiber core. A simulation study of the proposed sensor is carried out with the geometrical optical model to investigate the performance of the designed sensor with respect to the center wavelength, bilayer period and the thickness of silver layer. Because the lights transmitted in the fiber sensor have much larger incident angles than those in the prism based sensors, the center wavelength of the 1 DPC should shift to longer wavelength. When the coupling between TM-TPP and SPP is stronger, the sensor exhibits better performance because the electromagnetic field of the TPP-SPP hybrid mode is enhanced more in the analyte. Compared to most conventional fiber surface plasmon resonance sensors, the figure of merit of the proposed sensor is much higher while the sensitivity is comparable. The idea of utilizing TPP-SPP hybrid mode for RI sensing in the solid-core optical fiber structure presented in this paper could contribute to the study of the fiber RI sensor based on TPP.
提出了一种基于太赫兹表面等离激元(TPP)和表面等离激元(SPP)混合横向磁(TM)模式的新型高性能光纤折射率(RI)传感器。该传感器的结构是在光纤芯上涂有一维光子晶体(1DPC)/金属多层膜的多模光纤。利用几何光学模型对所提出的传感器进行了模拟研究,研究了设计传感器的中心波长、双层周期和银层厚度对传感器性能的影响。由于光纤传感器中传输的光的入射角比棱镜传感器中的入射角大得多,因此 1DPC 的中心波长应移向更长的波长。当 TM-TPP 和 SPP 的耦合更强时,传感器表现出更好的性能,因为在分析物中 TPP-SPP 混合模式的电磁场得到了更大的增强。与大多数传统的光纤表面等离子体共振传感器相比,所提出的传感器的品质因数要高得多,而灵敏度相当。本文提出的利用固态芯光纤结构中的 TPP-SPP 混合模式进行 RI 传感的思想,可能有助于研究基于 TPP 的光纤 RI 传感器。