Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials

Unusual backward and forward wave propagation in below cut-off waveguides loaded with dielectric metamaterials comprised of linear arrays of dielectric resonators (DRs) has been investigated by using theoretical, numerical, and experimental methods. Transmission bands were shown to corr...

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Main Authors: Fang Chen, Xiaohui Wang, George Semouchkin, Elena Semouchkina
Format: Article
Language:English
Published: AIP Publishing LLC 2014-10-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4898706
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spelling doaj-741c1418222b482a9bd57a8be5bd171e2020-11-25T00:18:45ZengAIP Publishing LLCAIP Advances2158-32262014-10-01410107129107129-1610.1063/1.4898706030410ADVEffects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterialsFang Chen0Xiaohui Wang1George Semouchkin2Elena Semouchkina3 Department of Electrical and Computer Engineering, Michigan Technological University, Houghton, Michigan 49931, USA Department of Electrical and Computer Engineering, Michigan Technological University, Houghton, Michigan 49931, USA Department of Electrical and Computer Engineering, Michigan Technological University, Houghton, Michigan 49931, USA Department of Electrical and Computer Engineering, Michigan Technological University, Houghton, Michigan 49931, USA Unusual backward and forward wave propagation in below cut-off waveguides loaded with dielectric metamaterials comprised of linear arrays of dielectric resonators (DRs) has been investigated by using theoretical, numerical, and experimental methods. Transmission bands were shown to correspond to three lowest resonances in arrays and were analyzed by using the concepts of magneto- and electro-inductive (MI and EI) waves describing the transfer of resonance excitation along the chains of coupled resonators. Equivalent circuit models (ECMs) have been constructed to describe MI and EI wave propagation and to obtain the dispersion diagrams. Good agreement between the obtained data and the results of full-wave simulations, theoretical calculations, and experiments provided an opportunity to determine coupling coefficients characterizing interaction between DRs in arrays at various resonances. It was shown that ripples observed in below cut-off transmission bands are transmission resonances caused by Fabry-Perot oscillations of inductive waves at impedance mismatch at the array ends. Fitting the transmission spectra for MI/EI waves in arrays, calculated by using the Transfer Matrix Method to the spectra obtained by using full-wave simulations/measurements, allowed for determining the ECM parameters to fully characterize the DR array properties. http://dx.doi.org/10.1063/1.4898706
collection DOAJ
language English
format Article
sources DOAJ
author Fang Chen
Xiaohui Wang
George Semouchkin
Elena Semouchkina
spellingShingle Fang Chen
Xiaohui Wang
George Semouchkin
Elena Semouchkina
Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
AIP Advances
author_facet Fang Chen
Xiaohui Wang
George Semouchkin
Elena Semouchkina
author_sort Fang Chen
title Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
title_short Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
title_full Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
title_fullStr Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
title_full_unstemmed Effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
title_sort effects of inductive waves on multi-band below-cut-off transmission in waveguides loaded with dielectric metamaterials
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2014-10-01
description Unusual backward and forward wave propagation in below cut-off waveguides loaded with dielectric metamaterials comprised of linear arrays of dielectric resonators (DRs) has been investigated by using theoretical, numerical, and experimental methods. Transmission bands were shown to correspond to three lowest resonances in arrays and were analyzed by using the concepts of magneto- and electro-inductive (MI and EI) waves describing the transfer of resonance excitation along the chains of coupled resonators. Equivalent circuit models (ECMs) have been constructed to describe MI and EI wave propagation and to obtain the dispersion diagrams. Good agreement between the obtained data and the results of full-wave simulations, theoretical calculations, and experiments provided an opportunity to determine coupling coefficients characterizing interaction between DRs in arrays at various resonances. It was shown that ripples observed in below cut-off transmission bands are transmission resonances caused by Fabry-Perot oscillations of inductive waves at impedance mismatch at the array ends. Fitting the transmission spectra for MI/EI waves in arrays, calculated by using the Transfer Matrix Method to the spectra obtained by using full-wave simulations/measurements, allowed for determining the ECM parameters to fully characterize the DR array properties.
url http://dx.doi.org/10.1063/1.4898706
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