| Literature DB >> 29232929 |
Shubin Yan1, Meng Zhang2, Xuefeng Zhao3, Yanjun Zhang4, Jicheng Wang5, Wen Jin6.
Abstract
In this study, a new refractive index sensor based on a metal-insulator-metal waveguide coupled with a notched ring resonator and stub is designed. The finite element method is used to study the propagation characteristics of the sensor. According to the calculation results, the transmission spectrum exhibits a typical Fano resonance shape. The phenomenon of Fano resonance is caused by the coupling between the broadband spectrum and narrowband spectrum. In the design, the broadband spectrum signal is generated by the stub, while the narrowband spectrum signal is generated by the notched ring resonator. In addition, the structural parameters of the resonators and the structure filled with media of different refractive indices are varied to study the sensing properties. The maximum achieved sensitivity of the sensor reached 1071.4 nm/RIU. The results reveal potential applications of the coupled system in the field of sensors.Entities:
Keywords: Fano resonance; finite element method; refractive index sensor; surface plasmon polaritons
Year: 2017 PMID: 29232929 PMCID: PMC5750855 DOI: 10.3390/s17122879
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Two-dimensional schematic of the metal–insulator–metal (MIM) waveguide coupled with the notched ring resonator and stub.
Figure 2Transmission spectrum of the MIM waveguide with the notched ring resonator and without the notched ring resonator.
Figure 3Contour profiles of the normalized H field of different structures at (a) = 910 nm and (b) = 965 nm.
Figure 4(a) Transmission spectra of the MIM waveguide coupled with the notched ring resonator and stub for different n. (b) Fitting line of the Fano resonance peak shift () with the change in the refractive index ().
Figure 5(a) Transmission spectra for different coupling distances g between the notched ring resonator and MIM waveguide. (b) Fitting line of the Fano resonance peak shift () with the change in the refractive index (). (c) Transmission spectra for different coupling distances g between the notched ring resonator and MIM waveguide. (d) Transmission spectra for different coupling distances g between the notched resonator and MIM waveguide.
Figure 6(a) Transmission spectra for different external diameters of the notched ring resonator R. (b) Fitting line of the Fano resonance peak shift () with the change in refractive index ().
Figure 7(a) Transmission spectra for different stub lengths l. (b) Fitting line of the Fano resonance peak shift () with the change in refractive index ().