Design of QR-Coded Metasurfaces for RCS Reduction at mmWave

This article presents the design of 1-bit metasurfaces for radar cross section (RCS) reduction over wide frequency band from 60 GHz to 120 GHz. The proposed 1-bit metasurfaces can be designed without the need for any complicated optimization algorithms such as genetic algorithms (GA) or particle swa...

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Main Authors: Mustafa K. Taher Al-Nuaimi, William G. Whittow
Format: Article
Language:English
Published: IEEE 2022-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9793653/
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author Mustafa K. Taher Al-Nuaimi
William G. Whittow
author_facet Mustafa K. Taher Al-Nuaimi
William G. Whittow
author_sort Mustafa K. Taher Al-Nuaimi
collection DOAJ
description This article presents the design of 1-bit metasurfaces for radar cross section (RCS) reduction over wide frequency band from 60 GHz to 120 GHz. The proposed 1-bit metasurfaces can be designed without the need for any complicated optimization algorithms such as genetic algorithms (GA) or particle swarm algorithms (PSO), or time-consuming simulations to achieve the optimized phase distribution map. The phase distribution maps required for more than 10-dB RCS reduction of the proposed metasurfaces were generated using two-dimensional (2D) quick response (QR) 1-bit generator in MATLAB which are fast and efficient. After we carefully studied several metasurfaces with various 2D QR codes, it was found that the QR coded metasurfaces are very powerful in achieving more than 10-dB RCS reduction with low-level diffusive scattering patterns. Two metasurfaces with their unit cells phase distributions being exactly the same as the QR codes of the words “IEEE” and “Metasurface” were designed and their RCS reduction characteristics were investigated. For off-normal or oblique incidence, more than 10-dB RCS reduction is preserved up to incident angles of 60° over the entire frequency band. The simulation and measured results show the proposed QR coded metasurfaces reduce the backscattered energies and RCS by more than 10-dB for different polarizations over the frequency range from 60 GHz to 120 GHz yielding a fractional bandwidth of 66.7%. The proposed approach is powerful and fast and makes the realization of coding metasurface much easier.
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spelling doaj.art-ce7488d7b71e43afab0c1bd7df578b082022-12-22T03:33:03ZengIEEEIEEE Access2169-35362022-01-0110662676627210.1109/ACCESS.2022.31821039793653Design of QR-Coded Metasurfaces for RCS Reduction at mmWaveMustafa K. Taher Al-Nuaimi0https://orcid.org/0000-0001-7876-616XWilliam G. Whittow1https://orcid.org/0000-0002-5668-8014School of AI-Guangdong and Taiwan, Foshan University, Foshan, ChinaWolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough, U.K.This article presents the design of 1-bit metasurfaces for radar cross section (RCS) reduction over wide frequency band from 60 GHz to 120 GHz. The proposed 1-bit metasurfaces can be designed without the need for any complicated optimization algorithms such as genetic algorithms (GA) or particle swarm algorithms (PSO), or time-consuming simulations to achieve the optimized phase distribution map. The phase distribution maps required for more than 10-dB RCS reduction of the proposed metasurfaces were generated using two-dimensional (2D) quick response (QR) 1-bit generator in MATLAB which are fast and efficient. After we carefully studied several metasurfaces with various 2D QR codes, it was found that the QR coded metasurfaces are very powerful in achieving more than 10-dB RCS reduction with low-level diffusive scattering patterns. Two metasurfaces with their unit cells phase distributions being exactly the same as the QR codes of the words “IEEE” and “Metasurface” were designed and their RCS reduction characteristics were investigated. For off-normal or oblique incidence, more than 10-dB RCS reduction is preserved up to incident angles of 60° over the entire frequency band. The simulation and measured results show the proposed QR coded metasurfaces reduce the backscattered energies and RCS by more than 10-dB for different polarizations over the frequency range from 60 GHz to 120 GHz yielding a fractional bandwidth of 66.7%. The proposed approach is powerful and fast and makes the realization of coding metasurface much easier.https://ieeexplore.ieee.org/document/9793653/Metasurfaceradar cross sectionreflectionreflectarraydiffuse reflectionscattering
spellingShingle Mustafa K. Taher Al-Nuaimi
William G. Whittow
Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
IEEE Access
Metasurface
radar cross section
reflection
reflectarray
diffuse reflection
scattering
title Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
title_full Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
title_fullStr Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
title_full_unstemmed Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
title_short Design of QR-Coded Metasurfaces for RCS Reduction at mmWave
title_sort design of qr coded metasurfaces for rcs reduction at mmwave
topic Metasurface
radar cross section
reflection
reflectarray
diffuse reflection
scattering
url https://ieeexplore.ieee.org/document/9793653/
work_keys_str_mv AT mustafaktaheralnuaimi designofqrcodedmetasurfacesforrcsreductionatmmwave
AT williamgwhittow designofqrcodedmetasurfacesforrcsreductionatmmwave