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Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures

The mechanism of negative permittivity/permeability is still unclear in the random metamaterials, where the precise control of microstructure and electromagnetic properties is also a challenge due to its random characteristic. Here silver was introduced into porous SiO(2) microsphere matrix by a sel...

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Autores principales: Xie, Peitao, Zhang, Zidong, Wang, Zhongyang, Sun, Kai, Fan, Runhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750100/
https://www.ncbi.nlm.nih.gov/pubmed/31549041
http://dx.doi.org/10.34133/2019/1021368
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author Xie, Peitao
Zhang, Zidong
Wang, Zhongyang
Sun, Kai
Fan, Runhua
author_facet Xie, Peitao
Zhang, Zidong
Wang, Zhongyang
Sun, Kai
Fan, Runhua
author_sort Xie, Peitao
collection PubMed
description The mechanism of negative permittivity/permeability is still unclear in the random metamaterials, where the precise control of microstructure and electromagnetic properties is also a challenge due to its random characteristic. Here silver was introduced into porous SiO(2) microsphere matrix by a self-assemble and template method to construct the random metamaterials. The distribution of silver was restricted among the interstices of SiO(2) microspheres, which lead to the precise regulation of electrical percolation (from hoping to Drude-type conductivity) with increasing silver content. Negative permittivity came from the plasma-like behavior of silver network, and its value and frequency dispersion were further adjusted by Lorentz-type dielectric response. During this process, the frequency of epsilon-near-zero (ENZ) could be adjusted accordingly. Negative permeability was well explained by the magnetic response of eddy current in silver micronetwork. The calculation results indicated that negative permeability has a linear relation with ω(0.5), showing a relaxation-type spectrum, different from the “magnetic plasma” of periodic metamaterials. Electromagnetic simulations demonstrated that negative permittivity materials and ENZ materials, with the advantage of enhanced absorption (40dB) and intelligent frequency selection even in a thin thickness (0.1 mm), could have potentials for electromagnetic attenuation and shielding. This work provides a clear physical image for the theoretical explanation of negative permittivity and negative permeability in random metamaterials, as well as a novel strategy to precisely control the microstructure of random metamaterials.
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spelling pubmed-67501002019-09-23 Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures Xie, Peitao Zhang, Zidong Wang, Zhongyang Sun, Kai Fan, Runhua Research (Wash D C) Research Article The mechanism of negative permittivity/permeability is still unclear in the random metamaterials, where the precise control of microstructure and electromagnetic properties is also a challenge due to its random characteristic. Here silver was introduced into porous SiO(2) microsphere matrix by a self-assemble and template method to construct the random metamaterials. The distribution of silver was restricted among the interstices of SiO(2) microspheres, which lead to the precise regulation of electrical percolation (from hoping to Drude-type conductivity) with increasing silver content. Negative permittivity came from the plasma-like behavior of silver network, and its value and frequency dispersion were further adjusted by Lorentz-type dielectric response. During this process, the frequency of epsilon-near-zero (ENZ) could be adjusted accordingly. Negative permeability was well explained by the magnetic response of eddy current in silver micronetwork. The calculation results indicated that negative permeability has a linear relation with ω(0.5), showing a relaxation-type spectrum, different from the “magnetic plasma” of periodic metamaterials. Electromagnetic simulations demonstrated that negative permittivity materials and ENZ materials, with the advantage of enhanced absorption (40dB) and intelligent frequency selection even in a thin thickness (0.1 mm), could have potentials for electromagnetic attenuation and shielding. This work provides a clear physical image for the theoretical explanation of negative permittivity and negative permeability in random metamaterials, as well as a novel strategy to precisely control the microstructure of random metamaterials. AAAS 2019-01-15 /pmc/articles/PMC6750100/ /pubmed/31549041 http://dx.doi.org/10.34133/2019/1021368 Text en Copyright © 2019 Peitao Xie et al. https://creativecommons.org/licenses/by/4.0/ Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Xie, Peitao
Zhang, Zidong
Wang, Zhongyang
Sun, Kai
Fan, Runhua
Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title_full Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title_fullStr Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title_full_unstemmed Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title_short Targeted Double Negative Properties in Silver/Silica Random Metamaterials by Precise Control of Microstructures
title_sort targeted double negative properties in silver/silica random metamaterials by precise control of microstructures
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750100/
https://www.ncbi.nlm.nih.gov/pubmed/31549041
http://dx.doi.org/10.34133/2019/1021368
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