Optical transmission theory for metal-insulator-metal periodic nanostructures

A semi-analytical formalism for the optical properties of a metal-insulator-metal periodic nanostructure using coupled-mode theory is presented. This structure consists in a dielectric layer in between two metallic layers with periodic one-dimensional nanoslit corrugation. The model is developed usi...

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Main Authors: Blanchard-Dionne Andre-Pierre, Meunier Michel
Format: Article
Language:English
Published: De Gruyter 2016-11-01
Series:Nanophotonics
Subjects:
Online Access:http://www.degruyter.com/view/j/nanoph.2017.6.issue-1/nanoph-2016-0120/nanoph-2016-0120.xml?format=INT
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spelling doaj-caf292e970fc48d2a52081efae98b6ff2021-05-02T08:18:07ZengDe GruyterNanophotonics2192-86062192-86142016-11-016134935510.1515/nanoph-2016-0120nanoph-2016-0120Optical transmission theory for metal-insulator-metal periodic nanostructuresBlanchard-Dionne Andre-Pierre0Meunier Michel1Polytechnique Montreal, Montreal, Quebec, CanadaPolytechnique Montreal, Montreal, Quebec, CanadaA semi-analytical formalism for the optical properties of a metal-insulator-metal periodic nanostructure using coupled-mode theory is presented. This structure consists in a dielectric layer in between two metallic layers with periodic one-dimensional nanoslit corrugation. The model is developed using multiple-scattering formalism, which defines transmission and reflection coefficients for each of the interface as a semi-infinite medium. Total transmission is then calculated using a summation of the multiple paths of light inside the structure. This method allows finding an exact solution for the transmission problem in every dimension regime, as long as a sufficient number of diffraction orders and guided modes are considered for the structure. The resonant modes of the structure are found to be related to the metallic slab only and to a combination of both the metallic slab and dielectric layer. This model also allows describing the resonant behavior of the system in the limit of a small dielectric layer, for which discontinuities in the dispersion curves are found. These discontinuities result from the out-of-phase interference of the different diffraction orders of the system, which account for field interaction for both inner interfaces of the structure.http://www.degruyter.com/view/j/nanoph.2017.6.issue-1/nanoph-2016-0120/nanoph-2016-0120.xml?format=INTplasmonicsopticsnanomaterials42.25.Bs73.20.Mf42.70.-a78.67.Pt
collection DOAJ
language English
format Article
sources DOAJ
author Blanchard-Dionne Andre-Pierre
Meunier Michel
spellingShingle Blanchard-Dionne Andre-Pierre
Meunier Michel
Optical transmission theory for metal-insulator-metal periodic nanostructures
Nanophotonics
plasmonics
optics
nanomaterials
42.25.Bs
73.20.Mf
42.70.-a
78.67.Pt
author_facet Blanchard-Dionne Andre-Pierre
Meunier Michel
author_sort Blanchard-Dionne Andre-Pierre
title Optical transmission theory for metal-insulator-metal periodic nanostructures
title_short Optical transmission theory for metal-insulator-metal periodic nanostructures
title_full Optical transmission theory for metal-insulator-metal periodic nanostructures
title_fullStr Optical transmission theory for metal-insulator-metal periodic nanostructures
title_full_unstemmed Optical transmission theory for metal-insulator-metal periodic nanostructures
title_sort optical transmission theory for metal-insulator-metal periodic nanostructures
publisher De Gruyter
series Nanophotonics
issn 2192-8606
2192-8614
publishDate 2016-11-01
description A semi-analytical formalism for the optical properties of a metal-insulator-metal periodic nanostructure using coupled-mode theory is presented. This structure consists in a dielectric layer in between two metallic layers with periodic one-dimensional nanoslit corrugation. The model is developed using multiple-scattering formalism, which defines transmission and reflection coefficients for each of the interface as a semi-infinite medium. Total transmission is then calculated using a summation of the multiple paths of light inside the structure. This method allows finding an exact solution for the transmission problem in every dimension regime, as long as a sufficient number of diffraction orders and guided modes are considered for the structure. The resonant modes of the structure are found to be related to the metallic slab only and to a combination of both the metallic slab and dielectric layer. This model also allows describing the resonant behavior of the system in the limit of a small dielectric layer, for which discontinuities in the dispersion curves are found. These discontinuities result from the out-of-phase interference of the different diffraction orders of the system, which account for field interaction for both inner interfaces of the structure.
topic plasmonics
optics
nanomaterials
42.25.Bs
73.20.Mf
42.70.-a
78.67.Pt
url http://www.degruyter.com/view/j/nanoph.2017.6.issue-1/nanoph-2016-0120/nanoph-2016-0120.xml?format=INT
work_keys_str_mv AT blancharddionneandrepierre opticaltransmissiontheoryformetalinsulatormetalperiodicnanostructures
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