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Plasmonic Surface Lattice Resonances: A Review of Properties and Applications

[Image: see text] When metal nanoparticles are arranged in an ordered array, they may scatter light to produce diffracted waves. If one of the diffracted waves then propagates in the plane of the array, it may couple the localized plasmon resonances associated with individual nanoparticles together,...

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Autores principales: Kravets, V. G., Kabashin, A. V., Barnes, W. L., Grigorenko, A. N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6026846/
https://www.ncbi.nlm.nih.gov/pubmed/29863344
http://dx.doi.org/10.1021/acs.chemrev.8b00243
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author Kravets, V. G.
Kabashin, A. V.
Barnes, W. L.
Grigorenko, A. N.
author_facet Kravets, V. G.
Kabashin, A. V.
Barnes, W. L.
Grigorenko, A. N.
author_sort Kravets, V. G.
collection PubMed
description [Image: see text] When metal nanoparticles are arranged in an ordered array, they may scatter light to produce diffracted waves. If one of the diffracted waves then propagates in the plane of the array, it may couple the localized plasmon resonances associated with individual nanoparticles together, leading to an exciting phenomenon, the drastic narrowing of plasmon resonances, down to 1–2 nm in spectral width. This presents a dramatic improvement compared to a typical single particle resonance line width of >80 nm. The very high quality factors of these diffractively coupled plasmon resonances, often referred to as plasmonic surface lattice resonances, and related effects have made this topic a very active and exciting field for fundamental research, and increasingly, these resonances have been investigated for their potential in the development of practical devices for communications, optoelectronics, photovoltaics, data storage, biosensing, and other applications. In the present review article, we describe the basic physical principles and properties of plasmonic surface lattice resonances: the width and quality of the resonances, singularities of the light phase, electric field enhancement, etc. We pay special attention to the conditions of their excitation in different experimental architectures by considering the following: in-plane and out-of-plane polarizations of the incident light, symmetric and asymmetric optical (refractive index) environments, the presence of substrate conductivity, and the presence of an active or magnetic medium. Finally, we review recent progress in applications of plasmonic surface lattice resonances in various fields.
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spelling pubmed-60268462018-07-03 Plasmonic Surface Lattice Resonances: A Review of Properties and Applications Kravets, V. G. Kabashin, A. V. Barnes, W. L. Grigorenko, A. N. Chem Rev [Image: see text] When metal nanoparticles are arranged in an ordered array, they may scatter light to produce diffracted waves. If one of the diffracted waves then propagates in the plane of the array, it may couple the localized plasmon resonances associated with individual nanoparticles together, leading to an exciting phenomenon, the drastic narrowing of plasmon resonances, down to 1–2 nm in spectral width. This presents a dramatic improvement compared to a typical single particle resonance line width of >80 nm. The very high quality factors of these diffractively coupled plasmon resonances, often referred to as plasmonic surface lattice resonances, and related effects have made this topic a very active and exciting field for fundamental research, and increasingly, these resonances have been investigated for their potential in the development of practical devices for communications, optoelectronics, photovoltaics, data storage, biosensing, and other applications. In the present review article, we describe the basic physical principles and properties of plasmonic surface lattice resonances: the width and quality of the resonances, singularities of the light phase, electric field enhancement, etc. We pay special attention to the conditions of their excitation in different experimental architectures by considering the following: in-plane and out-of-plane polarizations of the incident light, symmetric and asymmetric optical (refractive index) environments, the presence of substrate conductivity, and the presence of an active or magnetic medium. Finally, we review recent progress in applications of plasmonic surface lattice resonances in various fields. American Chemical Society 2018-06-04 2018-06-27 /pmc/articles/PMC6026846/ /pubmed/29863344 http://dx.doi.org/10.1021/acs.chemrev.8b00243 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Kravets, V. G.
Kabashin, A. V.
Barnes, W. L.
Grigorenko, A. N.
Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title_full Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title_fullStr Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title_full_unstemmed Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title_short Plasmonic Surface Lattice Resonances: A Review of Properties and Applications
title_sort plasmonic surface lattice resonances: a review of properties and applications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6026846/
https://www.ncbi.nlm.nih.gov/pubmed/29863344
http://dx.doi.org/10.1021/acs.chemrev.8b00243
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