Electromagnetically Induced Transparency and Refractive Index Sensing for a Plasmonic Waveguide with a Stub Coupled Ring Resonator

被引:0
|
作者
Z. D. Zhang
R. B. Wang
Z. Y Zhang
J. Tang
W. D. Zhang
C. Y. Xue
S. B. Yan
机构
[1] North University of China,Science and Technology on Electronic Test & Measurement Laboratory
[2] North University of China,Key Laboratory of Instrumentation Science & Dynamic Measurement, Ministry of Eduction
[3] School of Mechatronics engineering North University of China,School of Physics and Information Technology
[4] Shaanxi Normal University,undefined
来源
Plasmonics | 2017年 / 12卷
关键词
Surface plasmon polaritons; Metal-insulator-metal waveguide; Refractive index sensor; Finite element method;
D O I
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中图分类号
学科分类号
摘要
A plasmonic refractive index sensor based on electromagnetically induced transparency (EIT) composed of a metal-insulator-metal (MIM) waveguide with stub resonators and a ring resonator is presented. The transmission properties and the refractive index sensitivity are numerically studied with the finite element method (FEM). The results revealed an EIT-like transmission spectrum with an asymmetric line profile and a refractive index sensitivity of 1057 nm/RIU are obtained. The coupled mode theory (CMT) based on transmission line theory is adopted to illustrate the EIT-like phenomenon. Multiple EIT-like peaks are observed in the transmission spectrum of the derived structures based on the MIM waveguide with stub resonator coupled ring resonator. To analyze the multiple EIT-like modes of the derived structures, the Hz field distribution is calculated. In addition, the effect of the structural parameters on the EIT-like effect is also studied. These results provide a new method for the dynamic control of light in the nanoscale.
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页码:1007 / 1013
页数:6
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