Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption

In this article, we propose the design of a multispectral metasurface (MSM), which can simultaneously achieve quite good optical transparency, low infrared (IR) emissivity, and wideband microwave absorption. To this end, optically transparent materials were used in the MSM design, including indium t...

Full description

Bibliographic Details
Main Authors: Sining Huang, Qi Fan, Jiafu Wang, Cuilian Xu, Binke Wang, Baiyu Yang, Changhui Tian, Zhen Meng
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-09-01
Series:Frontiers in Physics
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fphy.2020.00385/full
id doaj-e882879a69b248a4bc684d2763a43e24
record_format Article
spelling doaj-e882879a69b248a4bc684d2763a43e242020-11-25T02:33:03ZengFrontiers Media S.A.Frontiers in Physics2296-424X2020-09-01810.3389/fphy.2020.00385581689Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave AbsorptionSining HuangQi FanJiafu WangCuilian XuBinke WangBaiyu YangChanghui TianZhen MengIn this article, we propose the design of a multispectral metasurface (MSM), which can simultaneously achieve quite good optical transparency, low infrared (IR) emissivity, and wideband microwave absorption. To this end, optically transparent materials were used in the MSM design, including indium tin oxide, polyethylene terephthalate, and polymethyl methacrylate. The MSM is composed of three functional layers: a frequency-selective surface (FSS) on the top, a resistively absorbing layer in the middle and a complete conducting sheet at the bottom. Because of large occupation ratio of conducting area and the low-pass property of the FSS, electromagnetic waves are allowed to penetrate through it into the middle absorbing layer, simultaneously with low surface IR emissivity. A prototype was designed, fabricated, and measured. Both the simulation and experiment results show that the MSM can achieve strong absorption of > 90% in 12.03–29.43 GHz and low IR emissivity of about 0.3 in 3.0–14.0 μm simultaneously. Moreover, the average optical transparency is higher than 90%. Because of the excellent multispectral compatibility, the MSM may find applications in electromagnetic protection, stealth technologies, etc.https://www.frontiersin.org/article/10.3389/fphy.2020.00385/fullmulti-spectralcompatible-metasurfacelow infrared emissivitymicrowave absorbervisible transparence
collection DOAJ
language English
format Article
sources DOAJ
author Sining Huang
Qi Fan
Jiafu Wang
Cuilian Xu
Binke Wang
Baiyu Yang
Changhui Tian
Zhen Meng
spellingShingle Sining Huang
Qi Fan
Jiafu Wang
Cuilian Xu
Binke Wang
Baiyu Yang
Changhui Tian
Zhen Meng
Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
Frontiers in Physics
multi-spectral
compatible-metasurface
low infrared emissivity
microwave absorber
visible transparence
author_facet Sining Huang
Qi Fan
Jiafu Wang
Cuilian Xu
Binke Wang
Baiyu Yang
Changhui Tian
Zhen Meng
author_sort Sining Huang
title Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
title_short Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
title_full Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
title_fullStr Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
title_full_unstemmed Multi-Spectral Metasurface With High Optical Transparency, Low Infrared Surface Emissivity, and Wideband Microwave Absorption
title_sort multi-spectral metasurface with high optical transparency, low infrared surface emissivity, and wideband microwave absorption
publisher Frontiers Media S.A.
series Frontiers in Physics
issn 2296-424X
publishDate 2020-09-01
description In this article, we propose the design of a multispectral metasurface (MSM), which can simultaneously achieve quite good optical transparency, low infrared (IR) emissivity, and wideband microwave absorption. To this end, optically transparent materials were used in the MSM design, including indium tin oxide, polyethylene terephthalate, and polymethyl methacrylate. The MSM is composed of three functional layers: a frequency-selective surface (FSS) on the top, a resistively absorbing layer in the middle and a complete conducting sheet at the bottom. Because of large occupation ratio of conducting area and the low-pass property of the FSS, electromagnetic waves are allowed to penetrate through it into the middle absorbing layer, simultaneously with low surface IR emissivity. A prototype was designed, fabricated, and measured. Both the simulation and experiment results show that the MSM can achieve strong absorption of > 90% in 12.03–29.43 GHz and low IR emissivity of about 0.3 in 3.0–14.0 μm simultaneously. Moreover, the average optical transparency is higher than 90%. Because of the excellent multispectral compatibility, the MSM may find applications in electromagnetic protection, stealth technologies, etc.
topic multi-spectral
compatible-metasurface
low infrared emissivity
microwave absorber
visible transparence
url https://www.frontiersin.org/article/10.3389/fphy.2020.00385/full
work_keys_str_mv AT sininghuang multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT qifan multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT jiafuwang multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT cuilianxu multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT binkewang multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT baiyuyang multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT changhuitian multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
AT zhenmeng multispectralmetasurfacewithhighopticaltransparencylowinfraredsurfaceemissivityandwidebandmicrowaveabsorption
_version_ 1724815890888785920