| Literature DB >> 29142234 |
Meiling Jiang1, Jiwei Qi2,3, Mingsi Zhang1, Qian Sun1,4, Jing Chen1, Zongqiang Chen1, Xuanyi Yu1,4, Yudong Li5,6, Jianguo Tian1,4.
Abstract
We propose and numerically investigate a novel ultra-high quality (Q) factor metallic micro-cavity based on concentric double metal-insulator-metal (MIM) rings (CDMR). In this CDMR cavity, because of the angular momentum matching, the strong coupling occurs between the same order modes of the inner and outer rings with huge resonance frequency difference. Consequently, the energy distribution between in the inner and outer rings presents enormous difference. Especially, for the quasi-in-phase CDMR modes, the energy is confined in the inner ring mainly, which suppresses the radiation loss greatly and results in ultra-narrow resonance dips and ultra-high Q factors. The full width at half-maximum (FWHM) of this CDMR cavity can be less than 2 nm and the Q factor can be higher than 300. Moreover, the character of this CDMR metallic micro-cavity can be modulated by varying the gap width between the two MIM rings. Our CDMR metallic micro-cavity provides a new perspective to design the advanced optical cavity with high Q factor and small mode volumes.Entities:
Year: 2017 PMID: 29142234 PMCID: PMC5688107 DOI: 10.1038/s41598-017-15906-4
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The two-dimensional schematic view of this CDMR metallic micro-cavity composed of a MIM waveguide and the CDMR.
Figure 2(a) Transmission spectrum of this CDMR metallic micro-cavity as a function of the incident wavelength with G = 34 nm. (b) Transmission spectra of each single MIM ring cavity as a function of the incident wavelength with the radius R′ = 241 nm and R′ = 325 nm respectively. The magnetic field distributions H of all these above resonance dips are also shown in this figure.
Figure 3The diagram of the mode coupling between the TM6 of the inner and outer MIM rings in the CDMR metallic micro-cavity. The magnetic field distributions H of all these above modes and the phase distributions of the quasi-in-phase and quasi-anti-phase CDMR modes are also shown in this figure.
Figure 4(a) The transmission spectra of the CDMR metallic micro-cavity with coupling distance G increasing from 28 nm to 40 nm with step length of 3 nm. (b) The Q factors and transmission contraction ratios of quasi-in-phase mode TM6 and TM8 respectively versus coupling width G.