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Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement

Surface plasmon polaritons (SPPs) have been attracting considerable attention owing to their unique capabilities of manipulating light. However, the intractable dispersion and high loss are two major obstacles for attaining high-performance plasmonic devices. Here, a graphene nanoribbon gap waveguid...

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Autores principales: Wu, Zhiyong, Zhang, Lei, Ning, Tingyin, Su, Hong, Li, Irene Ling, Ruan, Shuangchen, Zeng, Yu-Jia, Liang, Huawei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8156105/
https://www.ncbi.nlm.nih.gov/pubmed/34069185
http://dx.doi.org/10.3390/nano11051302
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author Wu, Zhiyong
Zhang, Lei
Ning, Tingyin
Su, Hong
Li, Irene Ling
Ruan, Shuangchen
Zeng, Yu-Jia
Liang, Huawei
author_facet Wu, Zhiyong
Zhang, Lei
Ning, Tingyin
Su, Hong
Li, Irene Ling
Ruan, Shuangchen
Zeng, Yu-Jia
Liang, Huawei
author_sort Wu, Zhiyong
collection PubMed
description Surface plasmon polaritons (SPPs) have been attracting considerable attention owing to their unique capabilities of manipulating light. However, the intractable dispersion and high loss are two major obstacles for attaining high-performance plasmonic devices. Here, a graphene nanoribbon gap waveguide (GNRGW) is proposed for guiding dispersionless gap SPPs (GSPPs) with deep-subwavelength confinement and low loss. An analytical model is developed to analyze the GSPPs, in which a reflection phase shift is employed to successfully deal with the influence caused by the boundaries of the graphene nanoribbon (GNR). It is demonstrated that a pulse with a 4 μm bandwidth and a 10 nm mode width can propagate in the linear passive system without waveform distortion, which is very robust against the shape change of the GNR. The decrease in the pulse amplitude is only 10% for a propagation distance of 1 μm. Furthermore, an array consisting of several GNRGWs is employed as a multichannel optical switch. When the separation is larger than 40 nm, each channel can be controlled independently by tuning the chemical potential of the corresponding GNR. The proposed GNRGW may raise great interest in studying dispersionless and low-loss nanophotonic devices, with potential applications in the distortionless transmission of nanoscale signals, electro-optic nanocircuits, and high-density on-chip communications.
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spelling pubmed-81561052021-05-28 Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement Wu, Zhiyong Zhang, Lei Ning, Tingyin Su, Hong Li, Irene Ling Ruan, Shuangchen Zeng, Yu-Jia Liang, Huawei Nanomaterials (Basel) Article Surface plasmon polaritons (SPPs) have been attracting considerable attention owing to their unique capabilities of manipulating light. However, the intractable dispersion and high loss are two major obstacles for attaining high-performance plasmonic devices. Here, a graphene nanoribbon gap waveguide (GNRGW) is proposed for guiding dispersionless gap SPPs (GSPPs) with deep-subwavelength confinement and low loss. An analytical model is developed to analyze the GSPPs, in which a reflection phase shift is employed to successfully deal with the influence caused by the boundaries of the graphene nanoribbon (GNR). It is demonstrated that a pulse with a 4 μm bandwidth and a 10 nm mode width can propagate in the linear passive system without waveform distortion, which is very robust against the shape change of the GNR. The decrease in the pulse amplitude is only 10% for a propagation distance of 1 μm. Furthermore, an array consisting of several GNRGWs is employed as a multichannel optical switch. When the separation is larger than 40 nm, each channel can be controlled independently by tuning the chemical potential of the corresponding GNR. The proposed GNRGW may raise great interest in studying dispersionless and low-loss nanophotonic devices, with potential applications in the distortionless transmission of nanoscale signals, electro-optic nanocircuits, and high-density on-chip communications. MDPI 2021-05-14 /pmc/articles/PMC8156105/ /pubmed/34069185 http://dx.doi.org/10.3390/nano11051302 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wu, Zhiyong
Zhang, Lei
Ning, Tingyin
Su, Hong
Li, Irene Ling
Ruan, Shuangchen
Zeng, Yu-Jia
Liang, Huawei
Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title_full Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title_fullStr Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title_full_unstemmed Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title_short Graphene Nanoribbon Gap Waveguides for Dispersionless and Low-Loss Propagation with Deep-Subwavelength Confinement
title_sort graphene nanoribbon gap waveguides for dispersionless and low-loss propagation with deep-subwavelength confinement
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8156105/
https://www.ncbi.nlm.nih.gov/pubmed/34069185
http://dx.doi.org/10.3390/nano11051302
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