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Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System

We theoretically investigated the plasmon trapping stability of a molecular-scale Au sphere via designing Au nanotip antenna hybridized with a graphene sheet embedded Silica substrate. A hybrid plasmonic trapping model is self-consistently built, which considers the surface plasmon excitation in the...

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Autores principales: Du, Guangqing, Lu, Yu, Lankanath, Dayantha, Hou, Xun, Chen, Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9267308/
https://www.ncbi.nlm.nih.gov/pubmed/35806751
http://dx.doi.org/10.3390/ma15134627
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author Du, Guangqing
Lu, Yu
Lankanath, Dayantha
Hou, Xun
Chen, Feng
author_facet Du, Guangqing
Lu, Yu
Lankanath, Dayantha
Hou, Xun
Chen, Feng
author_sort Du, Guangqing
collection PubMed
description We theoretically investigated the plasmon trapping stability of a molecular-scale Au sphere via designing Au nanotip antenna hybridized with a graphene sheet embedded Silica substrate. A hybrid plasmonic trapping model is self-consistently built, which considers the surface plasmon excitation in the graphene-hybridized tip-substrate system for supporting the scattering and gradient optical forces on the optical diffraction-limit broken nanoscale. It is revealed that the plasmon trapping properties, including plasmon optical force and potential well, can be unprecedentedly adjusted by applying a graphene sheet at proper Fermi energy with respect to the designed tip-substrate geometry. This shows that the plasmon potential well of 218 k(B)T at room temperature can be determinately achieved for trapping of a 10 nm Au sphere by optimizing the surface medium film layer of the designed graphene-hybridized Silica substrate. This is explained as the crucial role of graphene hybridization participating in plasmon enhancement for generating the highly localized electric field, in return augmenting the trapping force acting on the trapped sphere with a deepened potential well. This study can be helpful for designing the plasmon trapping of very small particles with new routes for molecular-scale applications for molecular-imaging, nano-sensing, and high-sensitive single-molecule spectroscopy, etc.
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spelling pubmed-92673082022-07-09 Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System Du, Guangqing Lu, Yu Lankanath, Dayantha Hou, Xun Chen, Feng Materials (Basel) Article We theoretically investigated the plasmon trapping stability of a molecular-scale Au sphere via designing Au nanotip antenna hybridized with a graphene sheet embedded Silica substrate. A hybrid plasmonic trapping model is self-consistently built, which considers the surface plasmon excitation in the graphene-hybridized tip-substrate system for supporting the scattering and gradient optical forces on the optical diffraction-limit broken nanoscale. It is revealed that the plasmon trapping properties, including plasmon optical force and potential well, can be unprecedentedly adjusted by applying a graphene sheet at proper Fermi energy with respect to the designed tip-substrate geometry. This shows that the plasmon potential well of 218 k(B)T at room temperature can be determinately achieved for trapping of a 10 nm Au sphere by optimizing the surface medium film layer of the designed graphene-hybridized Silica substrate. This is explained as the crucial role of graphene hybridization participating in plasmon enhancement for generating the highly localized electric field, in return augmenting the trapping force acting on the trapped sphere with a deepened potential well. This study can be helpful for designing the plasmon trapping of very small particles with new routes for molecular-scale applications for molecular-imaging, nano-sensing, and high-sensitive single-molecule spectroscopy, etc. MDPI 2022-07-01 /pmc/articles/PMC9267308/ /pubmed/35806751 http://dx.doi.org/10.3390/ma15134627 Text en © 2022 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
Du, Guangqing
Lu, Yu
Lankanath, Dayantha
Hou, Xun
Chen, Feng
Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title_full Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title_fullStr Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title_full_unstemmed Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title_short Molecular-Scale Plasmon Trapping via a Graphene-Hybridized Tip-Substrate System
title_sort molecular-scale plasmon trapping via a graphene-hybridized tip-substrate system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9267308/
https://www.ncbi.nlm.nih.gov/pubmed/35806751
http://dx.doi.org/10.3390/ma15134627
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