Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials

We designed magneto-electro-elastic piezoelectric, electromagnetic (EM) metamaterials (MEEPEM) by using a square lattice of the periodic arrays of conducting wires, piezoelectric photonic crystal (PPC), and split-ring resonators (SRRs). We analyzed the mechanism for multi-field coupling in MEEPEM. T...

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Main Authors: Wen-Chao Bai, Hui Hu, Ben-Hu Zhou, Gui-Xiang Liu, Ge Tang, Yang-Yu Huang, Yan Cao, Han Zhang, Han-Zhuang Zhang
Format: Article
Language:English
Published: MDPI AG 2022-09-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/14/9/1942
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author Wen-Chao Bai
Hui Hu
Ben-Hu Zhou
Gui-Xiang Liu
Ge Tang
Yang-Yu Huang
Yan Cao
Han Zhang
Han-Zhuang Zhang
author_facet Wen-Chao Bai
Hui Hu
Ben-Hu Zhou
Gui-Xiang Liu
Ge Tang
Yang-Yu Huang
Yan Cao
Han Zhang
Han-Zhuang Zhang
author_sort Wen-Chao Bai
collection DOAJ
description We designed magneto-electro-elastic piezoelectric, electromagnetic (EM) metamaterials (MEEPEM) by using a square lattice of the periodic arrays of conducting wires, piezoelectric photonic crystal (PPC), and split-ring resonators (SRRs). We analyzed the mechanism for multi-field coupling in MEEPEM. The magnetic field of the EM wave excites an attractive Ampère force in SRRs, which periodically compress MEEPEM, and this can create electric polarization due to the piezoelectric effect. The electric field of the EM wave can excite a longitudinal superlattice vibration in the PPC, which can also create electric polarization. The electric polarization can couple to the electric field of the periodic arrays of conducting wires. The coupled electric field will couple to the EM wave. These interactions result in multi-field coupling in MEEPEM. The coupling creates a type of polariton, called multi-field coupling polaritons, corresponding to a photonic band gap, namely, the multi-field coupling photonic band gap. We calculated the dielectric functions, the reflection coefficients, and the effective magnetic permeability of MEEPEM. By using them, we analyzed the transmission properties of EM waves in the MEEPEM. We analyzed the possibility of MEEPEM as left-handed metamaterials and zero refractive index material.
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spelling doaj.art-c466a233ead5470faa85fc60be2442df2023-11-23T19:13:38ZengMDPI AGSymmetry2073-89942022-09-01149194210.3390/sym14091942Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic MetamaterialsWen-Chao Bai0Hui Hu1Ben-Hu Zhou2Gui-Xiang Liu3Ge Tang4Yang-Yu Huang5Yan Cao6Han Zhang7Han-Zhuang Zhang8Department of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Shaoyang University, Shaoyang 422001, ChinaDepartment of Physics, Jilin University, Changchun 130012, ChinaDepartment of Physics, Jilin University, Changchun 130012, ChinaWe designed magneto-electro-elastic piezoelectric, electromagnetic (EM) metamaterials (MEEPEM) by using a square lattice of the periodic arrays of conducting wires, piezoelectric photonic crystal (PPC), and split-ring resonators (SRRs). We analyzed the mechanism for multi-field coupling in MEEPEM. The magnetic field of the EM wave excites an attractive Ampère force in SRRs, which periodically compress MEEPEM, and this can create electric polarization due to the piezoelectric effect. The electric field of the EM wave can excite a longitudinal superlattice vibration in the PPC, which can also create electric polarization. The electric polarization can couple to the electric field of the periodic arrays of conducting wires. The coupled electric field will couple to the EM wave. These interactions result in multi-field coupling in MEEPEM. The coupling creates a type of polariton, called multi-field coupling polaritons, corresponding to a photonic band gap, namely, the multi-field coupling photonic band gap. We calculated the dielectric functions, the reflection coefficients, and the effective magnetic permeability of MEEPEM. By using them, we analyzed the transmission properties of EM waves in the MEEPEM. We analyzed the possibility of MEEPEM as left-handed metamaterials and zero refractive index material.https://www.mdpi.com/2073-8994/14/9/1942metamaterialsmagneto-electro-elastic materialspiezoelectric photonic crystalsplit-ring resonators
spellingShingle Wen-Chao Bai
Hui Hu
Ben-Hu Zhou
Gui-Xiang Liu
Ge Tang
Yang-Yu Huang
Yan Cao
Han Zhang
Han-Zhuang Zhang
Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
Symmetry
metamaterials
magneto-electro-elastic materials
piezoelectric photonic crystal
split-ring resonators
title Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
title_full Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
title_fullStr Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
title_full_unstemmed Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
title_short Transmission Properties of Electromagnetic Waves in Magneto-Electro-Elastic Piezoelectric Electromagnetic Metamaterials
title_sort transmission properties of electromagnetic waves in magneto electro elastic piezoelectric electromagnetic metamaterials
topic metamaterials
magneto-electro-elastic materials
piezoelectric photonic crystal
split-ring resonators
url https://www.mdpi.com/2073-8994/14/9/1942
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