On-chip remote charger model using plasmonic island circuit

We propose the remote charger model using the light fidelity (LiFi) transmission and integrate microring resonator circuit. It consists of the stacked layers of silicon-graphene-gold materials known as a plasmonic island placed at the center of the modified add-drop filter. The input light power fro...

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Main Authors: Ali, J., Youplao, P., Pornsuwancharoen, N., Aziz, M. S., Chiangga, S., Amiri, I. S., Punthawanunt, S., Singh, G., Yupapin, P.
Format: Article
Language:English
Published: Elsevier B.V. 2018
Subjects:
Online Access:http://eprints.utm.my/id/eprint/79743/1/JalilAli2018_OnChipRemoteChargerModel.pdf
http://eprints.utm.my/id/eprint/79743/
http://dx.doi.org/10.1016/j.rinp.2018.03.048
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Institution: Universiti Teknologi Malaysia
Language: English
id my.utm.79743
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spelling my.utm.797432019-01-28T06:50:02Z http://eprints.utm.my/id/eprint/79743/ On-chip remote charger model using plasmonic island circuit Ali, J. Youplao, P. Pornsuwancharoen, N. Aziz, M. S. Chiangga, S. Amiri, I. S. Punthawanunt, S. Singh, G. Yupapin, P. QC Physics We propose the remote charger model using the light fidelity (LiFi) transmission and integrate microring resonator circuit. It consists of the stacked layers of silicon-graphene-gold materials known as a plasmonic island placed at the center of the modified add-drop filter. The input light power from the remote LiFi can enter into the island via a silicon waveguide. The optimized input power is obtained by the coupled micro-lens on the silicon surface. The induced electron mobility generated in the gold layer by the interfacing layer between silicon-graphene. This is the reversed interaction of the whispering gallery mode light power of the microring system, in which the generated power is fed back into the microring circuit. The electron mobility is the required output and obtained at the device ports and characterized for the remote current source applications. The obtained calculation results have shown that the output current of ∼2.5 × 10−11 AW−1, with the gold height of 1.0 µm and the input power of 5.0 W is obtained at the output port, which is shown the potential application for a short range free pace remote charger. Elsevier B.V. 2018 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/79743/1/JalilAli2018_OnChipRemoteChargerModel.pdf Ali, J. and Youplao, P. and Pornsuwancharoen, N. and Aziz, M. S. and Chiangga, S. and Amiri, I. S. and Punthawanunt, S. and Singh, G. and Yupapin, P. (2018) On-chip remote charger model using plasmonic island circuit. Results in Physics, 9 . pp. 815-818. ISSN 2211-3797 http://dx.doi.org/10.1016/j.rinp.2018.03.048 DOI:10.1016/j.rinp.2018.03.048
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic QC Physics
spellingShingle QC Physics
Ali, J.
Youplao, P.
Pornsuwancharoen, N.
Aziz, M. S.
Chiangga, S.
Amiri, I. S.
Punthawanunt, S.
Singh, G.
Yupapin, P.
On-chip remote charger model using plasmonic island circuit
description We propose the remote charger model using the light fidelity (LiFi) transmission and integrate microring resonator circuit. It consists of the stacked layers of silicon-graphene-gold materials known as a plasmonic island placed at the center of the modified add-drop filter. The input light power from the remote LiFi can enter into the island via a silicon waveguide. The optimized input power is obtained by the coupled micro-lens on the silicon surface. The induced electron mobility generated in the gold layer by the interfacing layer between silicon-graphene. This is the reversed interaction of the whispering gallery mode light power of the microring system, in which the generated power is fed back into the microring circuit. The electron mobility is the required output and obtained at the device ports and characterized for the remote current source applications. The obtained calculation results have shown that the output current of ∼2.5 × 10−11 AW−1, with the gold height of 1.0 µm and the input power of 5.0 W is obtained at the output port, which is shown the potential application for a short range free pace remote charger.
format Article
author Ali, J.
Youplao, P.
Pornsuwancharoen, N.
Aziz, M. S.
Chiangga, S.
Amiri, I. S.
Punthawanunt, S.
Singh, G.
Yupapin, P.
author_facet Ali, J.
Youplao, P.
Pornsuwancharoen, N.
Aziz, M. S.
Chiangga, S.
Amiri, I. S.
Punthawanunt, S.
Singh, G.
Yupapin, P.
author_sort Ali, J.
title On-chip remote charger model using plasmonic island circuit
title_short On-chip remote charger model using plasmonic island circuit
title_full On-chip remote charger model using plasmonic island circuit
title_fullStr On-chip remote charger model using plasmonic island circuit
title_full_unstemmed On-chip remote charger model using plasmonic island circuit
title_sort on-chip remote charger model using plasmonic island circuit
publisher Elsevier B.V.
publishDate 2018
url http://eprints.utm.my/id/eprint/79743/1/JalilAli2018_OnChipRemoteChargerModel.pdf
http://eprints.utm.my/id/eprint/79743/
http://dx.doi.org/10.1016/j.rinp.2018.03.048
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