Detail publikace
Modální metody pro trojrozměrné modelování pokročilých fotonickcýh struktur
ČTYROKÝ, J. KWIECIEN, P. RICHTER, I. PETRÁČEK, J. LUKSCH, J.
Český název
Modální metody pro trojrozměrné modelování pokročilých fotonickcýh struktur
Anglický název
Modal methods for 3D modelling of advanced photonic structures
Typ
článek ve sborníku ve WoS nebo Scopus
Jazyk
en
Originální abstrakt
In this contribution we present the basics of four frequency-domain modal methods for numerical modelling of advanced photonic and plasmonic structures that have been independently developed at three collaborating institutions within a joint project. The rigorous coupled-wave analysis (RCWA) method originally built up for modelling periodic 1D and crossed diffraction grating structures was developed and adapted also for modelling 3D photonic waveguiding structures. A very similar but independently developed bi-directional mode expansion propagation method (BEP) based on Fourier series has been extended for modelling 3D structures, too. Implementation of adaptive spatial resolution technique helps reduce the number of expansion terms and thus dramatically increase the numerical efficiency of the methods. Another two variants of the BEP approach differ in the way how the eigenmodes of the structures are searched for; they exploit the finite-difference and the finite-element methods, respectively. Results of modelling of two simple structures (effective indices of guided modes in a SOI photonic wire and reflections from a gap in the waveguide) are mutually compared and other results of modelling of some other promising photonic and plasmonic nanostructures as subwavelength grating waveguides and hybrid dielectric-plasmonic gap waveguides are finally presented, too.
Český abstrakt
Prezentujeme principy čtyř numerických metod, pracujících ve frekvenční oblasti. Metody jsou založeny na modálním rozkladu a slouží k simulaci pokročilých fotonických struktur. Použitelnost metod je demontrována na příkladech.
Anglický abstrakt
In this contribution we present the basics of four frequency-domain modal methods for numerical modelling of advanced photonic and plasmonic structures that have been independently developed at three collaborating institutions within a joint project. The rigorous coupled-wave analysis (RCWA) method originally built up for modelling periodic 1D and crossed diffraction grating structures was developed and adapted also for modelling 3D photonic waveguiding structures. A very similar but independently developed bi-directional mode expansion propagation method (BEP) based on Fourier series has been extended for modelling 3D structures, too. Implementation of adaptive spatial resolution technique helps reduce the number of expansion terms and thus dramatically increase the numerical efficiency of the methods. Another two variants of the BEP approach differ in the way how the eigenmodes of the structures are searched for; they exploit the finite-difference and the finite-element methods, respectively. Results of modelling of two simple structures (effective indices of guided modes in a SOI photonic wire and reflections from a gap in the waveguide) are mutually compared and other results of modelling of some other promising photonic and plasmonic nanostructures as subwavelength grating waveguides and hybrid dielectric-plasmonic gap waveguides are finally presented, too.
Klíčová slova anglicky
numerical modelling, modal methods, finite-difference method, finite-element method, photonic structures, plasmonics
Rok RIV
2012
Vydáno
01.08.2012
Nakladatel
National Institute of Telecommunications, Warsaw, Poland.
ISBN
9781467322270
Kniha
Proc. of 14th International Conference on Transparent Optical Networks
Strany od–do
Tu.C5.2-1–Tu.C5.2-4
Počet stran
4
BIBTEX
@inproceedings{BUT93632,
author="Jiří {Čtyroký} and Pavel {Kwiecien} and Ivan {Richter} and Jiří {Petráček} and Jaroslav {Luksch},
title="Modal methods for 3D modelling of advanced photonic structures",
booktitle="Proc. of 14th International Conference on Transparent Optical Networks",
year="2012",
month="August",
pages="Tu.C5.2-1--Tu.C5.2-4",
publisher="National Institute of Telecommunications, Warsaw, Poland.",
isbn="9781467322270"
}