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Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications

This work focused on the novel and compact 1-bit symmetrical coding-based metamaterial for radar cross section reduction in terahertz frequencies. A couple of coding particles were constructed to impersonate the elements ‘0′ and ‘1′, which have phase differences of 180°. All the analytical simulatio...

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Autores principales: Ramachandran, Tayaallen, Faruque, Mohammad Rashed Iqbal, Singh, Mandeep Singh Jit, Khandaker, Mayeen Uddin, Salman, Mohammad, Youssef, Ahmed A. F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921188/
https://www.ncbi.nlm.nih.gov/pubmed/36770037
http://dx.doi.org/10.3390/ma16031030
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author Ramachandran, Tayaallen
Faruque, Mohammad Rashed Iqbal
Singh, Mandeep Singh Jit
Khandaker, Mayeen Uddin
Salman, Mohammad
Youssef, Ahmed A. F.
author_facet Ramachandran, Tayaallen
Faruque, Mohammad Rashed Iqbal
Singh, Mandeep Singh Jit
Khandaker, Mayeen Uddin
Salman, Mohammad
Youssef, Ahmed A. F.
author_sort Ramachandran, Tayaallen
collection PubMed
description This work focused on the novel and compact 1-bit symmetrical coding-based metamaterial for radar cross section reduction in terahertz frequencies. A couple of coding particles were constructed to impersonate the elements ‘0′ and ‘1′, which have phase differences of 180°. All the analytical simulations were performed by adopting Computer Simulation Technology Microwave Studio 2019 software. Moreover, the transmission coefficient of the element ‘1′ was examined as well by adopting similar software and validated by a high-frequency structure simulator. Meanwhile, the frequency range from 0 to 3 THz was set in this work. The phase response properties of each element were examined before constructing various coding metamaterial designs in smaller and bigger lattices. The proposed unit cells exhibit phase responses at 0.84 THz and 1.54 THz, respectively. Meanwhile, the analysis of various coding sequences was carried out and they manifest interesting monostatic and bistatic radar cross section (RCS) reduction performances. The Coding Sequence 2 manifests the best bistatic RCS reduction values in smaller lattices, which reduced from −69.8 dBm(2) to −65.5 dBm(2) at 1.54 THz. On the other hand, the monostatic RCS values for all lattices have an inclined line until they reach a frequency of 1.0 THz from more than −60 dBm(2). However, from the 1.0 THz to 3.0 THz frequency range the RCS values have moderate discrepancies among the horizontal line for each lattice. Furthermore, two parametric studies were performed to examine the RCS reduction behaviour, for instance, multi-layer structures and as well tilt positioning of the proposed coding metamaterial. Overall it indicates that the integration of coding-based metamaterial successfully reduced the RCS values.
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spelling pubmed-99211882023-02-12 Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications Ramachandran, Tayaallen Faruque, Mohammad Rashed Iqbal Singh, Mandeep Singh Jit Khandaker, Mayeen Uddin Salman, Mohammad Youssef, Ahmed A. F. Materials (Basel) Article This work focused on the novel and compact 1-bit symmetrical coding-based metamaterial for radar cross section reduction in terahertz frequencies. A couple of coding particles were constructed to impersonate the elements ‘0′ and ‘1′, which have phase differences of 180°. All the analytical simulations were performed by adopting Computer Simulation Technology Microwave Studio 2019 software. Moreover, the transmission coefficient of the element ‘1′ was examined as well by adopting similar software and validated by a high-frequency structure simulator. Meanwhile, the frequency range from 0 to 3 THz was set in this work. The phase response properties of each element were examined before constructing various coding metamaterial designs in smaller and bigger lattices. The proposed unit cells exhibit phase responses at 0.84 THz and 1.54 THz, respectively. Meanwhile, the analysis of various coding sequences was carried out and they manifest interesting monostatic and bistatic radar cross section (RCS) reduction performances. The Coding Sequence 2 manifests the best bistatic RCS reduction values in smaller lattices, which reduced from −69.8 dBm(2) to −65.5 dBm(2) at 1.54 THz. On the other hand, the monostatic RCS values for all lattices have an inclined line until they reach a frequency of 1.0 THz from more than −60 dBm(2). However, from the 1.0 THz to 3.0 THz frequency range the RCS values have moderate discrepancies among the horizontal line for each lattice. Furthermore, two parametric studies were performed to examine the RCS reduction behaviour, for instance, multi-layer structures and as well tilt positioning of the proposed coding metamaterial. Overall it indicates that the integration of coding-based metamaterial successfully reduced the RCS values. MDPI 2023-01-23 /pmc/articles/PMC9921188/ /pubmed/36770037 http://dx.doi.org/10.3390/ma16031030 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
Khandaker, Mayeen Uddin
Salman, Mohammad
Youssef, Ahmed A. F.
Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title_full Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title_fullStr Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title_full_unstemmed Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title_short Reduction of Radar Cross Section by Adopting Symmetrical Coding Metamaterial Design for Terahertz Frequency Applications
title_sort reduction of radar cross section by adopting symmetrical coding metamaterial design for terahertz frequency applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921188/
https://www.ncbi.nlm.nih.gov/pubmed/36770037
http://dx.doi.org/10.3390/ma16031030
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