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Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles

Optical tweezers are key tools to trap and manipulate nanoparticles in a non-invasive way, and have been widely used in the biological and medical fields. We present an integrated multifunctional 2D plasmonic optical tweezer consisting of an array of graphene discs and the substrate circuit. The sub...

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Autores principales: Yang, Hongyan, Mei, Ziyang, Li, Zhenkai, Liu, Houquan, Deng, Hongchang, Xiao, Gongli, Li, Jianqing, Luo, Yunhan, Yuan, Libo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9144160/
https://www.ncbi.nlm.nih.gov/pubmed/35630991
http://dx.doi.org/10.3390/nano12101769
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author Yang, Hongyan
Mei, Ziyang
Li, Zhenkai
Liu, Houquan
Deng, Hongchang
Xiao, Gongli
Li, Jianqing
Luo, Yunhan
Yuan, Libo
author_facet Yang, Hongyan
Mei, Ziyang
Li, Zhenkai
Liu, Houquan
Deng, Hongchang
Xiao, Gongli
Li, Jianqing
Luo, Yunhan
Yuan, Libo
author_sort Yang, Hongyan
collection PubMed
description Optical tweezers are key tools to trap and manipulate nanoparticles in a non-invasive way, and have been widely used in the biological and medical fields. We present an integrated multifunctional 2D plasmonic optical tweezer consisting of an array of graphene discs and the substrate circuit. The substrate circuit allows us to apply a bias voltage to configure the Fermi energy of graphene discs independently. Our work is based on numerical simulation of the finite element method. Numerical results show that the optical force is generated due to the localized surface plasmonic resonance (LSPR) mode of the graphene discs with Fermi Energy E(f) = 0.6 eV under incident intensity I = 1 mW/μm(2), which has a very low incident intensity compared to other plasmonic tweezers systems. The optical forces on the nanoparticles can be controlled by modulating the position of LSPR excitation. Controlling the position of LSPR excitation by bias voltage gates to configure the Fermi energy of graphene disks, the nanoparticles can be dynamically transported to arbitrary positions in the 2D plane. Our work is integrated and has multiple functions, which can be applied to trap, transport, sort, and fuse nanoparticles independently. It has potential applications in many fields, such as lab-on-a-chip, nano assembly, enhanced Raman sensing, etc.
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spelling pubmed-91441602022-05-29 Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles Yang, Hongyan Mei, Ziyang Li, Zhenkai Liu, Houquan Deng, Hongchang Xiao, Gongli Li, Jianqing Luo, Yunhan Yuan, Libo Nanomaterials (Basel) Article Optical tweezers are key tools to trap and manipulate nanoparticles in a non-invasive way, and have been widely used in the biological and medical fields. We present an integrated multifunctional 2D plasmonic optical tweezer consisting of an array of graphene discs and the substrate circuit. The substrate circuit allows us to apply a bias voltage to configure the Fermi energy of graphene discs independently. Our work is based on numerical simulation of the finite element method. Numerical results show that the optical force is generated due to the localized surface plasmonic resonance (LSPR) mode of the graphene discs with Fermi Energy E(f) = 0.6 eV under incident intensity I = 1 mW/μm(2), which has a very low incident intensity compared to other plasmonic tweezers systems. The optical forces on the nanoparticles can be controlled by modulating the position of LSPR excitation. Controlling the position of LSPR excitation by bias voltage gates to configure the Fermi energy of graphene disks, the nanoparticles can be dynamically transported to arbitrary positions in the 2D plane. Our work is integrated and has multiple functions, which can be applied to trap, transport, sort, and fuse nanoparticles independently. It has potential applications in many fields, such as lab-on-a-chip, nano assembly, enhanced Raman sensing, etc. MDPI 2022-05-23 /pmc/articles/PMC9144160/ /pubmed/35630991 http://dx.doi.org/10.3390/nano12101769 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
Yang, Hongyan
Mei, Ziyang
Li, Zhenkai
Liu, Houquan
Deng, Hongchang
Xiao, Gongli
Li, Jianqing
Luo, Yunhan
Yuan, Libo
Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title_full Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title_fullStr Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title_full_unstemmed Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title_short Integrated Multifunctional Graphene Discs 2D Plasmonic Optical Tweezers for Manipulating Nanoparticles
title_sort integrated multifunctional graphene discs 2d plasmonic optical tweezers for manipulating nanoparticles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9144160/
https://www.ncbi.nlm.nih.gov/pubmed/35630991
http://dx.doi.org/10.3390/nano12101769
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