Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen

In this paper, we have designed an ultra-wideband electromagnetic (EM) absorber based on the concept of metasurface Salisbury screen (MSS), which features low profile, light weight, simple configuration, and robust angular performance. The metasurface with extremely simple patch pattern is utilized...

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Main Authors: Ziheng Zhou, Ke Chen, Bo Zhu, Junming Zhao, Yijun Feng, Yue Li
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8358220/
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spelling doaj-9f234b16bd574ad1abc23ef2a7fd9e5d2021-03-29T21:10:58ZengIEEEIEEE Access2169-35362018-01-016268432685310.1109/ACCESS.2018.28358158358220Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury ScreenZiheng Zhou0Ke Chen1Bo Zhu2Junming Zhao3Yijun Feng4https://orcid.org/0000-0002-7118-7509Yue Li5Department of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, ChinaDepartment of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, ChinaDepartment of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, ChinaDepartment of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, ChinaDepartment of Electronic Engineering, School of Electronic Science and Engineering, Nanjing University, Nanjing, ChinaDepartment of Electronic Engineering, Tsinghua University, Beijing, ChinaIn this paper, we have designed an ultra-wideband electromagnetic (EM) absorber based on the concept of metasurface Salisbury screen (MSS), which features low profile, light weight, simple configuration, and robust angular performance. The metasurface with extremely simple patch pattern is utilized to generate diverse controllable reflection phases, in place of the non-dispersive metallic plate used in conventional absorbers, thus achieving a multi-octave ultra-wideband EM wave absorption. Equivalent circuit model is established to analyze the performance of the MSS elements, and then the genetic algorithm and simulated annealing algorithm are employed to optimize the MSS element geometries and their spatial distribution. The proposed and fabricated MSS, with a polarization-insensitive absorption over 88% from 3.74 to 18.5 GHz verified by experiments, shows a considerable bandwidth improvement compared with the conventional Salisbury screen of same thickness which has 88% absorption band from 4.8 to 11.5 GHz. Furthermore, the MSS can still provide ultra-wideband absorption with high efficiency for large incident angle, for example, higher than 82% for 45° incidence. The proposed concept could provide opportunities for flexibly designing ultra-wideband EM absorbers, exhibiting promising potentials for many practical applications, such as electromagnetic compatibility, stealth technique, and so on.https://ieeexplore.ieee.org/document/8358220/Metasurfacewide-band microwave absorberoptimization algorithmSalisbury screen
collection DOAJ
language English
format Article
sources DOAJ
author Ziheng Zhou
Ke Chen
Bo Zhu
Junming Zhao
Yijun Feng
Yue Li
spellingShingle Ziheng Zhou
Ke Chen
Bo Zhu
Junming Zhao
Yijun Feng
Yue Li
Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
IEEE Access
Metasurface
wide-band microwave absorber
optimization algorithm
Salisbury screen
author_facet Ziheng Zhou
Ke Chen
Bo Zhu
Junming Zhao
Yijun Feng
Yue Li
author_sort Ziheng Zhou
title Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
title_short Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
title_full Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
title_fullStr Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
title_full_unstemmed Ultra-Wideband Microwave Absorption by Design and Optimization of Metasurface Salisbury Screen
title_sort ultra-wideband microwave absorption by design and optimization of metasurface salisbury screen
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description In this paper, we have designed an ultra-wideband electromagnetic (EM) absorber based on the concept of metasurface Salisbury screen (MSS), which features low profile, light weight, simple configuration, and robust angular performance. The metasurface with extremely simple patch pattern is utilized to generate diverse controllable reflection phases, in place of the non-dispersive metallic plate used in conventional absorbers, thus achieving a multi-octave ultra-wideband EM wave absorption. Equivalent circuit model is established to analyze the performance of the MSS elements, and then the genetic algorithm and simulated annealing algorithm are employed to optimize the MSS element geometries and their spatial distribution. The proposed and fabricated MSS, with a polarization-insensitive absorption over 88% from 3.74 to 18.5 GHz verified by experiments, shows a considerable bandwidth improvement compared with the conventional Salisbury screen of same thickness which has 88% absorption band from 4.8 to 11.5 GHz. Furthermore, the MSS can still provide ultra-wideband absorption with high efficiency for large incident angle, for example, higher than 82% for 45° incidence. The proposed concept could provide opportunities for flexibly designing ultra-wideband EM absorbers, exhibiting promising potentials for many practical applications, such as electromagnetic compatibility, stealth technique, and so on.
topic Metasurface
wide-band microwave absorber
optimization algorithm
Salisbury screen
url https://ieeexplore.ieee.org/document/8358220/
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AT kechen ultrawidebandmicrowaveabsorptionbydesignandoptimizationofmetasurfacesalisburyscreen
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