DocumentCode
10324
Title
Efficient Polarization Filter Design Based on Plasmonic Photonic Crystal Fiber
Author
Heikal, Ahmed M. ; Hussain, Firas Faeq K. ; Hameed, Mohamed Farhat O. ; Obayya, Salah S. A.
Author_Institution
City of Sci. & Technol., Centre for Photonics & Smart Mater., Giza, Italy
Volume
33
Issue
13
fYear
2015
fDate
July1, 1 2015
Firstpage
2868
Lastpage
2875
Abstract
A novel selectively metal-filled spiral photonic crystal fiber with an elliptic core is introduced and analyzed. The cladding air holes of the suggested design are arranged in spiral arms that are distributed in an elliptical form. In this paper, the dispersion characteristics and loss spectra of the reported design are studied through the full-vectorial finite-element method. The suggested design has advantages in terms of highly polarization-dependent coupling between x- and y-polarized core modes and higher order surface plasmon polariton (SPP) modes. It is evident from this study that the core modes can be separated from each other by changing the structure parameters. In addition, the resonance points at which the coupling between the core modes and SPP modes occurs can be tuned. Moreover, the coupling tunability of the proposed design can be increased by filling the cladding air hole with multiple metal wires. This novel structure is suitable for the design of filter-based applications. At wavelength λ = 1.013 μm, the loss of the x-polarized core mode is equal to 77.04 dB/mm, while it is only 2.765 dB/mm for the y-polarized core mode with single metal rod. However, for two metal rods, the losses for x- and y-polarized core modes are increased to 94.1 and 6.424 dB/mm, respectively, at λ = 0.98 μm.
Keywords
finite element analysis; holey fibres; optical design techniques; optical fibre cladding; optical fibre filters; optical fibre losses; photonic crystals; plasmonics; polaritons; surface plasmons; cladding air holes; coupling tunability; dispersion characteristics; efficient polarization filter design; elliptic core; full vectorial finite element method; highly polarization-dependent coupling; loss spectra; optical loss; plasmonic photonic crystal fiber; selectively metal-filled spiral photonic crystal fiber; surface plasmon polariton modes; wavelength 0.98 mum; wavelength 1.0143 mum; x-polarized core modes; y-polarized core modes; Couplings; Dispersion; Indexes; Metals; Plasmons; Spirals; Wires; Filter; Surface plasmon; filter; finite element method; finite-element method; spiral photonic crystal fiber; surface plasmon;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2015.2419175
Filename
7076630
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