DocumentCode
68471
Title
Optical Nanofilters Based on Meta-Atom Side-Coupled Plasmonics Metal- Insulator-Metal Waveguides
Author
Fu Sheng Ma ; Chengkuo Lee
Author_Institution
Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore, Singapore
Volume
31
Issue
17
fYear
2013
fDate
Sept.1, 2013
Firstpage
2876
Lastpage
2880
Abstract
We proposed a nanoplasmonic optical filtering technique based on complementary split-ring resonator structures. Interestingly, the proper plasmonic modes of the nanoring in the side-coupled arrangement can be selected and excited by the proposed structures. It is observed that the non-integer modes can be excited due to the presence of a metallic nano-wall as well as the integer modes. Furthermore, the numerical results indicate that the optical transmission spectrum of the investigated filter can be efficiently modified and tuned by manipulation either the position or the width of the employed nano-wall inside the metal-insulator-metal ring. The antinodes of the magnetic field of these modes, located on the symmetry plane of the proposed structures, can be manipulated by the position of the wall. Additionally, these modes, in particular the fundamental mode, are highly sensitive to the nano-wall dimensions. It indicates that the proposed nanofilter is a promising candidate as a tunable filter in nanophotonics applications.
Keywords
MIM devices; nanophotonics; numerical analysis; optical filters; optical metamaterials; optical resonators; optical tuning; optical waveguides; plasmonics; antinodes; complementary split-ring resonator structures; fundamental mode; magnetic field; meta-atom side-coupled plasmonic metal-insulator-metal waveguides; metal-insulator-metal ring; metallic nanowall; nanophotonics applications; nanoplasmonic optical filtering; nanoring; nanowall dimensions; noninteger modes; numerical analysis; optical nanofilters; optical transmission spectrum; plasmonic modes; side-coupled arrangement; symmetry plane; tunable filter; Optical filters; Optical resonators; Optical waveguides; Optimized production technology; Plasmons; Resonator filters; Filters; metamaterials; plasmonics; waveguides;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2275950
Filename
6574219
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