Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding

We propose a single negative metamaterial (MTM)-based hollow-core fiber with multilayer cladding employing zero-effective-phase bandgap for optical confinement in this paper. The cladding is formed from a ternary 1-D photonic crystal (T-1DPC) unit cell, which is basically a Mu-negative material sand...

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Main Authors: Shawon, M.J., Mahdiraji, G.A., Hasan, M.M., Shakibaei, B.H., Gang, S.Y., Mahdy, M.R.C., Adikan, Faisal Rafiq Mahamd
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Published: Institute of Electrical and Electronics Engineers (IEEE) 2015
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Online Access:http://eprints.um.edu.my/16437/
https://doi.org/10.1109/JPHOT.2015.2496399
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spelling my.um.eprints.164372018-10-11T02:09:50Z http://eprints.um.edu.my/16437/ Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding Shawon, M.J. Mahdiraji, G.A. Hasan, M.M. Shakibaei, B.H. Gang, S.Y. Mahdy, M.R.C. Adikan, Faisal Rafiq Mahamd QC Physics TA Engineering (General). Civil engineering (General) We propose a single negative metamaterial (MTM)-based hollow-core fiber with multilayer cladding employing zero-effective-phase bandgap for optical confinement in this paper. The cladding is formed from a ternary 1-D photonic crystal (T-1DPC) unit cell, which is basically a Mu-negative material sandwiched by different Mu-negative and Epsilon-negative materials. We demonstrate its capability for broadband transmission by numerically simulating and analyzing the photonic bandgap (PBG) and the modal loss characteristics. The results show that the T-1DPC-based cladding can effectively broaden the PBG. Compared with that for the binary 1-D photonic crystal unit cell-based fiber, the radiation loss for the T-1DPC-based fiber can be reduced by three orders of magnitude over most of the PBG range for equal number of unit cells. This MTM fiber, depending on the operating wavelength, shows surface plasmon guidance or classical wave guidance or both simultaneously. We also investigate the effect of variations in the design parameters and material absorption on the wave guidance of this fiber. Institute of Electrical and Electronics Engineers (IEEE) 2015 Article PeerReviewed Shawon, M.J. and Mahdiraji, G.A. and Hasan, M.M. and Shakibaei, B.H. and Gang, S.Y. and Mahdy, M.R.C. and Adikan, Faisal Rafiq Mahamd (2015) Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding. IEEE Photonics Journal, 7 (6). ISSN 1943-0655 https://doi.org/10.1109/JPHOT.2015.2496399 doi: 10.1109/JPHOT.2015.2496399
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
TA Engineering (General). Civil engineering (General)
spellingShingle QC Physics
TA Engineering (General). Civil engineering (General)
Shawon, M.J.
Mahdiraji, G.A.
Hasan, M.M.
Shakibaei, B.H.
Gang, S.Y.
Mahdy, M.R.C.
Adikan, Faisal Rafiq Mahamd
Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
description We propose a single negative metamaterial (MTM)-based hollow-core fiber with multilayer cladding employing zero-effective-phase bandgap for optical confinement in this paper. The cladding is formed from a ternary 1-D photonic crystal (T-1DPC) unit cell, which is basically a Mu-negative material sandwiched by different Mu-negative and Epsilon-negative materials. We demonstrate its capability for broadband transmission by numerically simulating and analyzing the photonic bandgap (PBG) and the modal loss characteristics. The results show that the T-1DPC-based cladding can effectively broaden the PBG. Compared with that for the binary 1-D photonic crystal unit cell-based fiber, the radiation loss for the T-1DPC-based fiber can be reduced by three orders of magnitude over most of the PBG range for equal number of unit cells. This MTM fiber, depending on the operating wavelength, shows surface plasmon guidance or classical wave guidance or both simultaneously. We also investigate the effect of variations in the design parameters and material absorption on the wave guidance of this fiber.
format Article
author Shawon, M.J.
Mahdiraji, G.A.
Hasan, M.M.
Shakibaei, B.H.
Gang, S.Y.
Mahdy, M.R.C.
Adikan, Faisal Rafiq Mahamd
author_facet Shawon, M.J.
Mahdiraji, G.A.
Hasan, M.M.
Shakibaei, B.H.
Gang, S.Y.
Mahdy, M.R.C.
Adikan, Faisal Rafiq Mahamd
author_sort Shawon, M.J.
title Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
title_short Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
title_full Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
title_fullStr Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
title_full_unstemmed Single Negative Metamaterial-Based Hollow-Core Bandgap Fiber With Multilayer Cladding
title_sort single negative metamaterial-based hollow-core bandgap fiber with multilayer cladding
publisher Institute of Electrical and Electronics Engineers (IEEE)
publishDate 2015
url http://eprints.um.edu.my/16437/
https://doi.org/10.1109/JPHOT.2015.2496399
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score 13.160551