Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification

Abstract Spoof surface plasmon polariton waveguides are perfect candidates to enable novel, miniaturized terahertz integrated systems, which will expedite the next-generation ultra-wideband communications, high-resolution imaging and spectroscopy applications. In this paper, we introduce, for the fi...

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Main Authors: Muhammed Abdullah Unutmaz, Mehmet Unlu
Format: Article
Language:English
Published: Nature Publishing Group 2019-05-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-019-44029-1
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spelling doaj-022ba6e1748d48afbdf8019cc6dacef12020-12-08T08:05:48ZengNature Publishing GroupScientific Reports2045-23222019-05-01911810.1038/s41598-019-44029-1Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental VerificationMuhammed Abdullah Unutmaz0Mehmet Unlu1Ankara Yildirim Beyazit UniversityTOBB University of Economics and TechnologyAbstract Spoof surface plasmon polariton waveguides are perfect candidates to enable novel, miniaturized terahertz integrated systems, which will expedite the next-generation ultra-wideband communications, high-resolution imaging and spectroscopy applications. In this paper, we introduce, for the first time, a model for the effective dielectric constant, which is the most fundamental design parameter, of the terahertz spoof surface plasmon polariton waveguides. To verify the proposed model, we design, fabricate and measure several waveguides with different physical parameters for 0.25 to 0.3 THz band. The measurement results show very good agreement with the simulations, having an average and a maximum error of 2.6% and 8.8%, respectively, achieving 10-to-30 times better accuracy than the previous approaches presented in the literature. To the best of our knowledge, this is the first-time investigation of the effective dielectric constant of the terahertz spoof surface plasmon polariton waveguides, enabling accurate design of any passive component for the terahertz band.https://doi.org/10.1038/s41598-019-44029-1
collection DOAJ
language English
format Article
sources DOAJ
author Muhammed Abdullah Unutmaz
Mehmet Unlu
spellingShingle Muhammed Abdullah Unutmaz
Mehmet Unlu
Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
Scientific Reports
author_facet Muhammed Abdullah Unutmaz
Mehmet Unlu
author_sort Muhammed Abdullah Unutmaz
title Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
title_short Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
title_full Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
title_fullStr Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
title_full_unstemmed Terahertz Spoof Surface Plasmon Polariton Waveguides: A Comprehensive Model with Experimental Verification
title_sort terahertz spoof surface plasmon polariton waveguides: a comprehensive model with experimental verification
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2019-05-01
description Abstract Spoof surface plasmon polariton waveguides are perfect candidates to enable novel, miniaturized terahertz integrated systems, which will expedite the next-generation ultra-wideband communications, high-resolution imaging and spectroscopy applications. In this paper, we introduce, for the first time, a model for the effective dielectric constant, which is the most fundamental design parameter, of the terahertz spoof surface plasmon polariton waveguides. To verify the proposed model, we design, fabricate and measure several waveguides with different physical parameters for 0.25 to 0.3 THz band. The measurement results show very good agreement with the simulations, having an average and a maximum error of 2.6% and 8.8%, respectively, achieving 10-to-30 times better accuracy than the previous approaches presented in the literature. To the best of our knowledge, this is the first-time investigation of the effective dielectric constant of the terahertz spoof surface plasmon polariton waveguides, enabling accurate design of any passive component for the terahertz band.
url https://doi.org/10.1038/s41598-019-44029-1
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