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Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications

Metamaterial analysis for microwave frequencies is a common practice. However, adopting a multi-layered design is unique in the concept of miniaturisation, thus requiring extensive research for optimal performance. This study focuses on a multi-layered symmetric metamaterial design for C- and X-band...

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Autores principales: Ramachandran, Tayaallen, Faruque, Mohammad Rashed Iqbal, Singh, Mandeep Singh Jit, Al-Mugren, K. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10342431/
https://www.ncbi.nlm.nih.gov/pubmed/37444880
http://dx.doi.org/10.3390/ma16134566
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author Ramachandran, Tayaallen
Faruque, Mohammad Rashed Iqbal
Singh, Mandeep Singh Jit
Al-Mugren, K. S.
author_facet Ramachandran, Tayaallen
Faruque, Mohammad Rashed Iqbal
Singh, Mandeep Singh Jit
Al-Mugren, K. S.
author_sort Ramachandran, Tayaallen
collection PubMed
description Metamaterial analysis for microwave frequencies is a common practice. However, adopting a multi-layered design is unique in the concept of miniaturisation, thus requiring extensive research for optimal performance. This study focuses on a multi-layered symmetric metamaterial design for C- and X-band applications. All simulation analyses were performed analytically using Computer Simulation Technology Studio Suite 2019. The performances of the proposed metamaterial design were analysed through several parametric studies. Based on the observation, the proposed metamaterial unit cell design manifested resonant frequencies at 7.63 GHz (C-band) and 9.56 GHz (X-band). Moreover, the analysis of effective medium parameters was also included in this study. High-Frequency Simulation 15.0 and Advanced Design System 2020 software validated the transmission coefficient results. Simultaneously, the proposed multi-layered metamaterial design with Rogers RO3006 substrate material exhibited a unique transmission coefficient using double, triple, and quadruple layers. The two resonant frequencies in the unit cell design were successfully increased to three in the double-layer structure at 6.34 GHz (C-band), 8.46 and 11.13 GHz (X-band). The proposed unit cell design was arranged in an array structure to analyse the performance changes in the transmission coefficient. Overall, the proposed metamaterial design accomplished the miniaturisation concept by arranging unit cells in a multi-layer structure and possesses unique properties such as a highly effective medium ratio and left-handed characteristics.
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spelling pubmed-103424312023-07-14 Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications Ramachandran, Tayaallen Faruque, Mohammad Rashed Iqbal Singh, Mandeep Singh Jit Al-Mugren, K. S. Materials (Basel) Article Metamaterial analysis for microwave frequencies is a common practice. However, adopting a multi-layered design is unique in the concept of miniaturisation, thus requiring extensive research for optimal performance. This study focuses on a multi-layered symmetric metamaterial design for C- and X-band applications. All simulation analyses were performed analytically using Computer Simulation Technology Studio Suite 2019. The performances of the proposed metamaterial design were analysed through several parametric studies. Based on the observation, the proposed metamaterial unit cell design manifested resonant frequencies at 7.63 GHz (C-band) and 9.56 GHz (X-band). Moreover, the analysis of effective medium parameters was also included in this study. High-Frequency Simulation 15.0 and Advanced Design System 2020 software validated the transmission coefficient results. Simultaneously, the proposed multi-layered metamaterial design with Rogers RO3006 substrate material exhibited a unique transmission coefficient using double, triple, and quadruple layers. The two resonant frequencies in the unit cell design were successfully increased to three in the double-layer structure at 6.34 GHz (C-band), 8.46 and 11.13 GHz (X-band). The proposed unit cell design was arranged in an array structure to analyse the performance changes in the transmission coefficient. Overall, the proposed metamaterial design accomplished the miniaturisation concept by arranging unit cells in a multi-layer structure and possesses unique properties such as a highly effective medium ratio and left-handed characteristics. MDPI 2023-06-24 /pmc/articles/PMC10342431/ /pubmed/37444880 http://dx.doi.org/10.3390/ma16134566 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ramachandran, Tayaallen
Faruque, Mohammad Rashed Iqbal
Singh, Mandeep Singh Jit
Al-Mugren, K. S.
Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title_full Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title_fullStr Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title_full_unstemmed Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title_short Compact Multi-Layered Symmetric Metamaterial Design Structure for Microwave Frequency Applications
title_sort compact multi-layered symmetric metamaterial design structure for microwave frequency applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10342431/
https://www.ncbi.nlm.nih.gov/pubmed/37444880
http://dx.doi.org/10.3390/ma16134566
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