Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems
We investigate the aptness of various <inline-formula> <tex-math notation="LaTeX">$4^{th}$ </tex-math></inline-formula> order (90°) rotationally symmetric phase-transforming cells for the upper phase-gradient metasurface, which always receives an oblique...
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doaj-747aaaf5ee5b414ca10cadafc7f173362021-08-09T23:00:51ZengIEEEIEEE Access2169-35362021-01-01910908010909310.1109/ACCESS.2021.31001449496658Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering SystemsKhushboo Singh0https://orcid.org/0000-0003-2708-194XMuhammad U. Afzal1https://orcid.org/0000-0002-8517-408XKaru P. Esselle2https://orcid.org/0000-0002-3681-0086School of Engineering, Macquarie University, Macquarie Park, NSW, AustraliaSchool of Electrical and Data Engineering, University of Technology, Ultimo, NSW, AustraliaSchool of Electrical and Data Engineering, University of Technology, Ultimo, NSW, AustraliaWe investigate the aptness of various <inline-formula> <tex-math notation="LaTeX">$4^{th}$ </tex-math></inline-formula> order (90°) rotationally symmetric phase-transforming cells for the upper phase-gradient metasurface, which always receives an oblique incidence wave from the lower metasurface in a Near-Field Meta-Steering system. A comprehensive study on the behavior of various phase-transforming cells and corresponding supercells when a rotating oblique plane wave impinges on them is presented. First, we select the supercell with high transmission in the desired output Floquet modes, for both TE and TM input modes, when an oblique incidence wave is rotated. The selected supercell is then optimized using Floquet analysis in conjunction with particle swarm optimization (PSO). All the undesired modes are successfully suppressed below −32 dB in the optimized supercell, and the predicted broadside radiation pattern is free of spurious grating lobes. A Near-Field Meta-Steering system with an aperture diameter of <inline-formula> <tex-math notation="LaTeX">$7.3\lambda _{0}$ </tex-math></inline-formula> (110mm @ 20 GHz) is presented. It has a pair of optimized phase-gradient metasurfaces and a dipole antenna array. A maximum peak directivity of 24.2 dB is achieved when the beam is in the broadside direction. The proposed steering system is capable of scanning a conical range with an apex angle of 126° when a 6 dB reduction in peak directivity is allowed. For a 3 dB variation in the peak directivity, the corresponding apex angle is 103°.https://ieeexplore.ieee.org/document/9496658/Near-field phase transformationbeam-steeringhigh-gain antennaphase gradient metasurfaceslens antennaflat-panel |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Khushboo Singh Muhammad U. Afzal Karu P. Esselle |
spellingShingle |
Khushboo Singh Muhammad U. Afzal Karu P. Esselle Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems IEEE Access Near-field phase transformation beam-steering high-gain antenna phase gradient metasurfaces lens antenna flat-panel |
author_facet |
Khushboo Singh Muhammad U. Afzal Karu P. Esselle |
author_sort |
Khushboo Singh |
title |
Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems |
title_short |
Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems |
title_full |
Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems |
title_fullStr |
Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems |
title_full_unstemmed |
Designing Efficient Phase-Gradient Metasurfaces for Near-Field Meta-Steering Systems |
title_sort |
designing efficient phase-gradient metasurfaces for near-field meta-steering systems |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2021-01-01 |
description |
We investigate the aptness of various <inline-formula> <tex-math notation="LaTeX">$4^{th}$ </tex-math></inline-formula> order (90°) rotationally symmetric phase-transforming cells for the upper phase-gradient metasurface, which always receives an oblique incidence wave from the lower metasurface in a Near-Field Meta-Steering system. A comprehensive study on the behavior of various phase-transforming cells and corresponding supercells when a rotating oblique plane wave impinges on them is presented. First, we select the supercell with high transmission in the desired output Floquet modes, for both TE and TM input modes, when an oblique incidence wave is rotated. The selected supercell is then optimized using Floquet analysis in conjunction with particle swarm optimization (PSO). All the undesired modes are successfully suppressed below −32 dB in the optimized supercell, and the predicted broadside radiation pattern is free of spurious grating lobes. A Near-Field Meta-Steering system with an aperture diameter of <inline-formula> <tex-math notation="LaTeX">$7.3\lambda _{0}$ </tex-math></inline-formula> (110mm @ 20 GHz) is presented. It has a pair of optimized phase-gradient metasurfaces and a dipole antenna array. A maximum peak directivity of 24.2 dB is achieved when the beam is in the broadside direction. The proposed steering system is capable of scanning a conical range with an apex angle of 126° when a 6 dB reduction in peak directivity is allowed. For a 3 dB variation in the peak directivity, the corresponding apex angle is 103°. |
topic |
Near-field phase transformation beam-steering high-gain antenna phase gradient metasurfaces lens antenna flat-panel |
url |
https://ieeexplore.ieee.org/document/9496658/ |
work_keys_str_mv |
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