Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators

Metasurfaces are two-dimensional (2D) artificial electromagnetic (EM) materials comprising subwavelength periodic or non-periodic arrays of resonator elements. Multi-functional metasurfaces have shown magnificent potentials for many applications, including wireless communication, radar systems, and...

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Main Authors: Chhunheng Lor, Ratanak Phon, Minjae Lee, Sungjoon Lim
Format: Article
Language:English
Published: Elsevier 2022-04-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127522001903
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author Chhunheng Lor
Ratanak Phon
Minjae Lee
Sungjoon Lim
author_facet Chhunheng Lor
Ratanak Phon
Minjae Lee
Sungjoon Lim
author_sort Chhunheng Lor
collection DOAJ
description Metasurfaces are two-dimensional (2D) artificial electromagnetic (EM) materials comprising subwavelength periodic or non-periodic arrays of resonator elements. Multi-functional metasurfaces have shown magnificent potentials for many applications, including wireless communication, radar systems, and security. EM functions of metasurfaces can generally be switched or controlled by electrical or optical components, but these conventional tuning technologies suffer from complexity, high cost, and design limitations for large scales and function integration. Therefore, this paper proposes a novel thermal–mechanical anisotropic metasurface to provide multiple functionalities through mechanical transformation due to thermal stimulus on two shape memory alloy actuators, switching EM functionality between absorption and reflection. The absorptivity and reflectivity at 10.5 GHz are 96.5% and 81.33%, respectively. It consists of the motional metasurface and stational metasurface where mechanical transformation is achieved by the motional metasurface. In addition to the mechanical transformation, its function is switched depending on incident EM wave direction due to anisotropy that could achieved the transmission enhancement in ratio of 11.02 dB at operation frequency 5.9 GHz in opposing excitation. The proposed idea is numerically and experimentally demonstrated and discussed.
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spelling doaj.art-2945b5e9296141bcbdad8a442b620e162022-12-22T01:16:37ZengElsevierMaterials & Design0264-12752022-04-01216110569Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuatorsChhunheng Lor0Ratanak Phon1Minjae Lee2Sungjoon Lim3School of Electrical and Electronic Engineering, Chung-Ang University, Heukseok-Dong, Dongjak-Gu, Seoul 06974, Republic of KoreaSchool of Electrical and Electronic Engineering, Chung-Ang University, Heukseok-Dong, Dongjak-Gu, Seoul 06974, Republic of KoreaSchool of Electrical and Electronic Engineering, Chung-Ang University, Heukseok-Dong, Dongjak-Gu, Seoul 06974, Republic of KoreaCorresponding author.; School of Electrical and Electronic Engineering, Chung-Ang University, Heukseok-Dong, Dongjak-Gu, Seoul 06974, Republic of KoreaMetasurfaces are two-dimensional (2D) artificial electromagnetic (EM) materials comprising subwavelength periodic or non-periodic arrays of resonator elements. Multi-functional metasurfaces have shown magnificent potentials for many applications, including wireless communication, radar systems, and security. EM functions of metasurfaces can generally be switched or controlled by electrical or optical components, but these conventional tuning technologies suffer from complexity, high cost, and design limitations for large scales and function integration. Therefore, this paper proposes a novel thermal–mechanical anisotropic metasurface to provide multiple functionalities through mechanical transformation due to thermal stimulus on two shape memory alloy actuators, switching EM functionality between absorption and reflection. The absorptivity and reflectivity at 10.5 GHz are 96.5% and 81.33%, respectively. It consists of the motional metasurface and stational metasurface where mechanical transformation is achieved by the motional metasurface. In addition to the mechanical transformation, its function is switched depending on incident EM wave direction due to anisotropy that could achieved the transmission enhancement in ratio of 11.02 dB at operation frequency 5.9 GHz in opposing excitation. The proposed idea is numerically and experimentally demonstrated and discussed.http://www.sciencedirect.com/science/article/pii/S0264127522001903MetasurfacesMulti-functionalsThermalMechanicalsAnisotropic
spellingShingle Chhunheng Lor
Ratanak Phon
Minjae Lee
Sungjoon Lim
Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
Materials & Design
Metasurfaces
Multi-functionals
Thermal
Mechanicals
Anisotropic
title Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
title_full Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
title_fullStr Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
title_full_unstemmed Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
title_short Multi-functional thermal-mechanical anisotropic metasurface with shape memory alloy actuators
title_sort multi functional thermal mechanical anisotropic metasurface with shape memory alloy actuators
topic Metasurfaces
Multi-functionals
Thermal
Mechanicals
Anisotropic
url http://www.sciencedirect.com/science/article/pii/S0264127522001903
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AT ratanakphon multifunctionalthermalmechanicalanisotropicmetasurfacewithshapememoryalloyactuators
AT minjaelee multifunctionalthermalmechanicalanisotropicmetasurfacewithshapememoryalloyactuators
AT sungjoonlim multifunctionalthermalmechanicalanisotropicmetasurfacewithshapememoryalloyactuators