| Literature DB >> 28383510 |
Yue Tang1, Zhidong Zhang2, Ruibing Wang3, Zhenyin Hai4, Chenyang Xue5, Wendong Zhang6, Shubin Yan7.
Abstract
A surface plasmon polariton refractive index sensor based on Fano resonances in metal-insulator-metal (MIM) waveguides coupled with rectangular and ring resonators is proposed and numerically investigated using a finite element method. Fano resonances are observed in the transmission spectra, which result from the coupling between the narrow-band spectral response in the ring resonator and the broadband spectral response in the rectangular resonator. Results are analyzed using coupled-mode theory based on transmission line theory. The coupled mode theory is employed to explain the Fano resonance effect, and the analytical result is in good agreement with the simulation result. The results show that with an increase in the refractive index of the fill dielectric material in the slot of the system, the Fano resonance peak exhibits a remarkable red shift, and the highest value of sensitivity (S) is 1125 nm/RIU, RIU means refractive index unit. Furthermore, the coupled MIM waveguide structure can be integrated with other photonic devices at the chip scale. The results can provide a guide for future applications of this structure.Entities:
Keywords: Fano resonance; coupled-mode theory; finite element method; plasmonic refractive index sensor
Year: 2017 PMID: 28383510 PMCID: PMC5422057 DOI: 10.3390/s17040784
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 12D schematic of the metal–insulator–metal (MIM) waveguides coupled with rectangular and ring resonators. SPPs: surface plasmon polaritons.
Figure 2The diagram of full width at half maximum (FWHM).
Figure 3(a) Transmission spectra of the MIM waveguides coupled with ring and rectangular cavities (red curve) by a rectangular cavity only (black curve); (b) contour profiles of the normalized H field distributions in the MIM waveguides coupled with ring and rectangular resonators with λ = 1010 nm (top) and λ = 1025 nm (bottom).
Figure 4(a) Transmission spectra for the MIM waveguide coupled with ring and rectangular cavities with changing n (h = 100 nm); (b) Shift in the Fano resonance peak as a function of refractive index (δn).
Figure 5Transmission spectra of the MIM waveguides coupled with ring and rectangular cavities with (a) changing q (h = 100 nm) and (b) changing h of the rectangular resonator.
Figure 6Transmission spectra of the MIM waveguides coupled with ring and rectangular cavities with (a) changing r1 and r3; (b) shift in the Fano resonance peak as a function of the refractive index change (δn).
Figure 7Transmission spectra of the MIM waveguide coupled with ring and rectangular cavities with varying coupling distances (a) g2; (b) g1; (c) g3 and (d) the shift in the Fano resonance peak as a function of the refractive index change (δn).