Cargando…

Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique

A self-contained formulation for analyzing electromagnetic scattering by a significant class of planar gratings composed of plasmonic nanorods, which were infinite length along their axes, is presented. The procedure for the lattice sums technique was implemented in a cylindrical harmonic expansion...

Descripción completa

Detalles Bibliográficos
Autores principales: Jandieri, Vakhtang, Yasumoto, Kiyotoshi, Pistora, Jaromir, Erni, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766945/
https://www.ncbi.nlm.nih.gov/pubmed/31514442
http://dx.doi.org/10.3390/s19183923
_version_ 1783454803897090048
author Jandieri, Vakhtang
Yasumoto, Kiyotoshi
Pistora, Jaromir
Erni, Daniel
author_facet Jandieri, Vakhtang
Yasumoto, Kiyotoshi
Pistora, Jaromir
Erni, Daniel
author_sort Jandieri, Vakhtang
collection PubMed
description A self-contained formulation for analyzing electromagnetic scattering by a significant class of planar gratings composed of plasmonic nanorods, which were infinite length along their axes, is presented. The procedure for the lattice sums technique was implemented in a cylindrical harmonic expansion method based on the generalized reflection matrix approach for full-wave scattering analysis of plasmonic gratings. The method provided a high computational efficiency and can be considered as one of the best-suited numerical tools for the optimization of plasmonic sensors and plasmonic guiding devices both having a planar geometry. Although the proposed formalism can be applied to analyze a wide class of plasmonic gratings, three configurations were studied in the manuscript. Firstly, a multilayered grating of silver nanocylinders formed analogously to photonic crystals was considered. In the region far from the resonances of a single plasmonic nanocylinder, the structure showed similar properties compared to conventional photonic crystals. When one or a few nanorods were periodically removed from the original crystal, thus forming a crystal with defects, a new band was formed in the spectral responses because of the resonant tunneling through the defect layers. The rigorous formulation of plasmonic gratings with defects was proposed for the first time. Finally, a plasmonic planar grating of metal-coated dielectric nanorods coupled to the dielectric slab was investigated from the viewpoint of design of a refractive index sensor. Dual-absorption bands attributable to the excitation of the localized surface plasmons were studied, and the near field distributions were given in both absorption bands associated with the resonances on the upper and inner surfaces of a single metal-coated nanocylinder. Resonance in the second absorption band was sensitive to the refractive index of the background medium and could be useful for the design of refractive index sensors. Also analyzed was a phase-matching condition between the evanescent space-harmonics of the plasmonic grating and the guided modes inside the slab, leading to a strong coupling.
format Online
Article
Text
id pubmed-6766945
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-67669452019-10-02 Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique Jandieri, Vakhtang Yasumoto, Kiyotoshi Pistora, Jaromir Erni, Daniel Sensors (Basel) Article A self-contained formulation for analyzing electromagnetic scattering by a significant class of planar gratings composed of plasmonic nanorods, which were infinite length along their axes, is presented. The procedure for the lattice sums technique was implemented in a cylindrical harmonic expansion method based on the generalized reflection matrix approach for full-wave scattering analysis of plasmonic gratings. The method provided a high computational efficiency and can be considered as one of the best-suited numerical tools for the optimization of plasmonic sensors and plasmonic guiding devices both having a planar geometry. Although the proposed formalism can be applied to analyze a wide class of plasmonic gratings, three configurations were studied in the manuscript. Firstly, a multilayered grating of silver nanocylinders formed analogously to photonic crystals was considered. In the region far from the resonances of a single plasmonic nanocylinder, the structure showed similar properties compared to conventional photonic crystals. When one or a few nanorods were periodically removed from the original crystal, thus forming a crystal with defects, a new band was formed in the spectral responses because of the resonant tunneling through the defect layers. The rigorous formulation of plasmonic gratings with defects was proposed for the first time. Finally, a plasmonic planar grating of metal-coated dielectric nanorods coupled to the dielectric slab was investigated from the viewpoint of design of a refractive index sensor. Dual-absorption bands attributable to the excitation of the localized surface plasmons were studied, and the near field distributions were given in both absorption bands associated with the resonances on the upper and inner surfaces of a single metal-coated nanocylinder. Resonance in the second absorption band was sensitive to the refractive index of the background medium and could be useful for the design of refractive index sensors. Also analyzed was a phase-matching condition between the evanescent space-harmonics of the plasmonic grating and the guided modes inside the slab, leading to a strong coupling. MDPI 2019-09-11 /pmc/articles/PMC6766945/ /pubmed/31514442 http://dx.doi.org/10.3390/s19183923 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jandieri, Vakhtang
Yasumoto, Kiyotoshi
Pistora, Jaromir
Erni, Daniel
Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title_full Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title_fullStr Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title_full_unstemmed Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title_short Analysis of Scattering by Plasmonic Gratings of Circular Nanorods Using Lattice Sums Technique
title_sort analysis of scattering by plasmonic gratings of circular nanorods using lattice sums technique
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766945/
https://www.ncbi.nlm.nih.gov/pubmed/31514442
http://dx.doi.org/10.3390/s19183923
work_keys_str_mv AT jandierivakhtang analysisofscatteringbyplasmonicgratingsofcircularnanorodsusinglatticesumstechnique
AT yasumotokiyotoshi analysisofscatteringbyplasmonicgratingsofcircularnanorodsusinglatticesumstechnique
AT pistorajaromir analysisofscatteringbyplasmonicgratingsofcircularnanorodsusinglatticesumstechnique
AT ernidaniel analysisofscatteringbyplasmonicgratingsofcircularnanorodsusinglatticesumstechnique