DocumentCode
81124
Title
Bow-Tie Hybrid Plasmonic Waveguides
Author
Yusheng Bian ; Qihuang Gong
Author_Institution
Dept. of Phys., Peking Univ., Beijing, China
Volume
32
Issue
23
fYear
2014
fDate
Dec.1, 1 2014
Firstpage
4504
Lastpage
4509
Abstract
We propose a hybrid plasmonic waveguide that incorporates a semiconductor-insulator-metal bow-tie configuration within a low-index gap guarded by semiconductor and metallic nanostructures. Ultratight field confinement (Aeff ~λ2 3100 - λ2/120) in conjunction with reasonable propagation distance (L ~ 56-138 μm) can be achieved simultaneously at a telecommunication wavelength. Compared to a conventional hybrid waveguide, the effective mode area and propagation loss of a typical bow-tie hybrid configuration are reduced by 2-89% and 34-62%, respectively, whereas the figure of merit is enhanced by 53-700%, along with increased power ratio inside the gap region for small gap cases. Studies on fabrication tolerance, waveguide crosstalk, and loss compensation reveal its robust property for practical implementations and remarkable feasibility to realize ultracompact passive and active components. Moreover, we also reveal the broadband feature of the waveguide and show that its concept can be applicable to various other metallic configurations as well, which may open up possibilities for the inventions of numerous high-performance plasmon waveguides and components.
Keywords
integrated optics; nanophotonics; nanostructured materials; optical crosstalk; optical fabrication; optical losses; optical waveguides; plasmonics; semiconductor-insulator boundaries; surface plasmons; bow-tie hybrid plasmonic waveguides; effective mode area; low-index gap; metallic nanostructures; optical fabrication tolerance; optical propagation distance; optical propagation loss; semiconductor-insulator-metal bow-tie configuration; telecommunication wavelength; waveguide crosstalk; Metals; Optical waveguides; Optimized production technology; Photonics; Plasmons; Semiconductor waveguides; Silicon; Optical waveguides; Photonic integrations; Surface plasmons; photonic integrations; surface plasmons;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2359916
Filename
6907936
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