Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism

The present study proposes a strong and wide microwave absorption of multilayered metastructure (SWMAMM) capable of achieving an ultra-wideband absorption of −20 dB and 60° oblique incidence. SWMAMM primarily consists of metasurface-Ⅰ (MS-Ⅰ), metasurface-Ⅱ (MS-Ⅱ), and a top absorption-enhanced skin,...

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Published in:Results in Physics
Main Authors: Zheyipei Ma, Yanqiong Liu, Chao Jiang
Format: Article
Language:English
Published: Elsevier 2024-01-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379723010732
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author Zheyipei Ma
Yanqiong Liu
Chao Jiang
author_facet Zheyipei Ma
Yanqiong Liu
Chao Jiang
author_sort Zheyipei Ma
collection DOAJ
container_title Results in Physics
description The present study proposes a strong and wide microwave absorption of multilayered metastructure (SWMAMM) capable of achieving an ultra-wideband absorption of −20 dB and 60° oblique incidence. SWMAMM primarily consists of metasurface-Ⅰ (MS-Ⅰ), metasurface-Ⅱ (MS-Ⅱ), and a top absorption-enhanced skin, which are separated by three support dielectric slabs. Based on impedance matching theory and the interference model, MS-Ⅰ serves as the core functional layer for wideband absorption; whereas MS-Ⅱ not only provides ultra-wideband impedance matching but also enhances absorptivity, distinguishing it from most designs. To further improve impedance matching, different hole arrays are incorporated into the substrates of MS-Ⅰ, MS-Ⅱ, and the top absorption-enhanced skin by modifying their equivalent reactance. The measurement results demonstrate that the −10 dB and −20 dB reflection bands are separately in the range of 3.97–23.19 GHz and 5.24–21.81 GHz when the oblique incidence angle reaches 5°; the −10 dB reflection band can cover the range of 5.99–25.00 GHz when the oblique incidence angle reaches 60°. Our approach, which involves impedance matching design of MS-Ⅱ and optimizing impedance matching by incorporating different hole arrays into the substrates of the MS-Ⅰ, MS-Ⅱ, and the top absorption-enhanced skin, can be applied to various unit cells and dielectric materials. This approach offers significantly enhanced convenience and efficiency compared to existing designs, thereby facilitating further optimization and development of Electromagnetic absorbers.
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spelling doaj-art-e600f4405c8d45228c3fef3f22001da82025-08-20T00:23:00ZengElsevierResults in Physics2211-37972024-01-015610728010.1016/j.rinp.2023.107280Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanismZheyipei Ma0Yanqiong Liu1Chao Jiang2Powder Metallurgy Research Institute of Central South University, Changsha 410083, China; State Key Laboratory of Powder Metallurgy, Changsha 410083, ChinaPowder Metallurgy Research Institute of Central South University, Changsha 410083, China; State Key Laboratory of Powder Metallurgy, Changsha 410083, ChinaPowder Metallurgy Research Institute of Central South University, Changsha 410083, China; State Key Laboratory of Powder Metallurgy, Changsha 410083, China; Corresponding author at: Powder Metallurgy Research Institute of Central South University, Changsha 410083, China.The present study proposes a strong and wide microwave absorption of multilayered metastructure (SWMAMM) capable of achieving an ultra-wideband absorption of −20 dB and 60° oblique incidence. SWMAMM primarily consists of metasurface-Ⅰ (MS-Ⅰ), metasurface-Ⅱ (MS-Ⅱ), and a top absorption-enhanced skin, which are separated by three support dielectric slabs. Based on impedance matching theory and the interference model, MS-Ⅰ serves as the core functional layer for wideband absorption; whereas MS-Ⅱ not only provides ultra-wideband impedance matching but also enhances absorptivity, distinguishing it from most designs. To further improve impedance matching, different hole arrays are incorporated into the substrates of MS-Ⅰ, MS-Ⅱ, and the top absorption-enhanced skin by modifying their equivalent reactance. The measurement results demonstrate that the −10 dB and −20 dB reflection bands are separately in the range of 3.97–23.19 GHz and 5.24–21.81 GHz when the oblique incidence angle reaches 5°; the −10 dB reflection band can cover the range of 5.99–25.00 GHz when the oblique incidence angle reaches 60°. Our approach, which involves impedance matching design of MS-Ⅱ and optimizing impedance matching by incorporating different hole arrays into the substrates of the MS-Ⅰ, MS-Ⅱ, and the top absorption-enhanced skin, can be applied to various unit cells and dielectric materials. This approach offers significantly enhanced convenience and efficiency compared to existing designs, thereby facilitating further optimization and development of Electromagnetic absorbers.http://www.sciencedirect.com/science/article/pii/S2211379723010732Electromagnetic absorberMetastructureMetasurfaceImpedance matchingUltra-wideband
spellingShingle Zheyipei Ma
Yanqiong Liu
Chao Jiang
Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
Electromagnetic absorber
Metastructure
Metasurface
Impedance matching
Ultra-wideband
title Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
title_full Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
title_fullStr Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
title_full_unstemmed Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
title_short Strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
title_sort strong and wide microwave absorption of multilayered metastructure enhanced by impedance matching mechanism
topic Electromagnetic absorber
Metastructure
Metasurface
Impedance matching
Ultra-wideband
url http://www.sciencedirect.com/science/article/pii/S2211379723010732
work_keys_str_mv AT zheyipeima strongandwidemicrowaveabsorptionofmultilayeredmetastructureenhancedbyimpedancematchingmechanism
AT yanqiongliu strongandwidemicrowaveabsorptionofmultilayeredmetastructureenhancedbyimpedancematchingmechanism
AT chaojiang strongandwidemicrowaveabsorptionofmultilayeredmetastructureenhancedbyimpedancematchingmechanism