A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons

A planar and compact open waveguiding structure based on spoof surface plasmon polaritons (SPPs) was demonstrated. For practicality, instead of the well-known wire medium, the uniaxial strip medium (USM) was proposed and used as the effective bulk material with a negative dielectric constant to supp...

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Main Authors: Liang-Yu Ou Yang, Cheng-Hao Tsai, Shih-Yuan Chen
Format: Article
Language:English
Published: IEEE 2014-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/6945241/
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author Liang-Yu Ou Yang
Cheng-Hao Tsai
Shih-Yuan Chen
author_facet Liang-Yu Ou Yang
Cheng-Hao Tsai
Shih-Yuan Chen
author_sort Liang-Yu Ou Yang
collection DOAJ
description A planar and compact open waveguiding structure based on spoof surface plasmon polaritons (SPPs) was demonstrated. For practicality, instead of the well-known wire medium, the uniaxial strip medium (USM) was proposed and used as the effective bulk material with a negative dielectric constant to support the spoof SPP modes. The relevant formulations, including the modal dispersion relations and the formulation for the waves in a multilayer anisotropic structure, are analytically presented in this paper. Interestingly, instead of taming and suppressing the spatial dispersion (SD), which had been done in most past studies, SD was exploited in the proposed structure to enhance the field confinement of the spoof SPP mode by approximately 41%. Moreover, the thickness of the USM slab could be reduced by 50%, using conductor backing and without perturbing the odd mode. This method and SD can help avoid electromagnetic interactions among various components of a multilayer printed circuit board structure and help miniaturize sensors or surface-wave waveguides in the microwave regime. In this study, the subwavelength thickness of the proposed structure was only 0.09 &#x03BB;<sub>0</sub> at 1.34 GHz. Additionally, the propagation loss for such slow-wave structures has seldom been discussed analytically and quantitatively. In this study, through calculations and simulations, low attenuation constants in the spoof SPP propagation direction of the proposed structures were investigated. Finally, an experiment was conducted, and an extraction method for obtaining the required reflection spectrum from the measured S-parameter was developed.
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spelling doaj.art-0a666da27c78420bbe03864a6362536d2022-12-21T23:01:54ZengIEEEIEEE Photonics Journal1943-06552014-01-016611910.1109/JPHOT.2014.23661726945241A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface PlasmonsLiang-Yu Ou Yang0Cheng-Hao Tsai1Shih-Yuan Chen2Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei, TaiwanDept. of Electr. Eng., Nat. Taiwan Univ., Taipei, TaiwanDept. of Electr. Eng., Nat. Taiwan Univ., Taipei, TaiwanA planar and compact open waveguiding structure based on spoof surface plasmon polaritons (SPPs) was demonstrated. For practicality, instead of the well-known wire medium, the uniaxial strip medium (USM) was proposed and used as the effective bulk material with a negative dielectric constant to support the spoof SPP modes. The relevant formulations, including the modal dispersion relations and the formulation for the waves in a multilayer anisotropic structure, are analytically presented in this paper. Interestingly, instead of taming and suppressing the spatial dispersion (SD), which had been done in most past studies, SD was exploited in the proposed structure to enhance the field confinement of the spoof SPP mode by approximately 41%. Moreover, the thickness of the USM slab could be reduced by 50%, using conductor backing and without perturbing the odd mode. This method and SD can help avoid electromagnetic interactions among various components of a multilayer printed circuit board structure and help miniaturize sensors or surface-wave waveguides in the microwave regime. In this study, the subwavelength thickness of the proposed structure was only 0.09 &#x03BB;<sub>0</sub> at 1.34 GHz. Additionally, the propagation loss for such slow-wave structures has seldom been discussed analytically and quantitatively. In this study, through calculations and simulations, low attenuation constants in the spoof SPP propagation direction of the proposed structures were investigated. Finally, an experiment was conducted, and an extraction method for obtaining the required reflection spectrum from the measured S-parameter was developed.https://ieeexplore.ieee.org/document/6945241/guided wave structuresspatial dispersionspoof surface plasmon polaritonsuniaxial wire medium
spellingShingle Liang-Yu Ou Yang
Cheng-Hao Tsai
Shih-Yuan Chen
A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
IEEE Photonics Journal
guided wave structures
spatial dispersion
spoof surface plasmon polaritons
uniaxial wire medium
title A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
title_full A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
title_fullStr A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
title_full_unstemmed A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
title_short A Planar and Subwavelength Open Guided Wave Structure Based on Spoof Surface Plasmons
title_sort planar and subwavelength open guided wave structure based on spoof surface plasmons
topic guided wave structures
spatial dispersion
spoof surface plasmon polaritons
uniaxial wire medium
url https://ieeexplore.ieee.org/document/6945241/
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