Wave absorption control in the new designed photonic metamaterials with artificial opal

Photonic metamaterials consisting of artificial opal with magnetic inclusions were considered, used in controllable microwave electronic devices. The analyzed structures consist of matrices of SiO2 nanospheres (diameter 200 - 400 nm) with included clusters of ferrite spinels (MnxCo0.6-xZn0.4Fe2O4, N...

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Main Authors: Ionescu Daniela, Apreotesei Gabriela
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201817804004
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spelling doaj-0fd30ea9431e47ab9ae2e981c1136cb22021-02-02T00:28:24ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011780400410.1051/matecconf/201817804004matecconf_imanee2018_04004Wave absorption control in the new designed photonic metamaterials with artificial opalIonescu DanielaApreotesei GabrielaPhotonic metamaterials consisting of artificial opal with magnetic inclusions were considered, used in controllable microwave electronic devices. The analyzed structures consist of matrices of SiO2 nanospheres (diameter 200 - 400 nm) with included clusters of ferrite spinels (MnxCo0.6-xZn0.4Fe2O4, NixCo0.6-xZn0.4Fe2O4, LaxCo0.6-xZn0.4Fe2O4, NdxCo0.6-xZn0.4Fe2O4) in interspherical nanospacing (4 ÷ 7% concentration). The ellipsoidal clusters are polycrystalline, with spatial dimensions of 20 – 30 nm and grains of 5 – 12 nm. A controlled wave absorption was obtained in these high inductivity structures. Evolution of the wave attenuation coefficient, α[dB/m], in function of the applied magnetic field and particle inclusion size, for different content of the magnetic ions in the ferrite inclusion, have been determined at frequencies around the samples ferromagnetic resonance, by structural simulation. The test configuration was: sample inside the rectangular waveguide, mode TE10, in the frequency range 24 ÷ 40 GHz. The polarizing magnetic field for the ferrites was tested in the range of 0 ÷ 20 kOe and minimized by modifying the structure. The metamaterial design optimization was realized, controllable by different parameters at structure level. The ferromagnetic resonance influence on the control process was pointed out and also the particular results and effects which can be induced by the resonant behavior.https://doi.org/10.1051/matecconf/201817804004
collection DOAJ
language English
format Article
sources DOAJ
author Ionescu Daniela
Apreotesei Gabriela
spellingShingle Ionescu Daniela
Apreotesei Gabriela
Wave absorption control in the new designed photonic metamaterials with artificial opal
MATEC Web of Conferences
author_facet Ionescu Daniela
Apreotesei Gabriela
author_sort Ionescu Daniela
title Wave absorption control in the new designed photonic metamaterials with artificial opal
title_short Wave absorption control in the new designed photonic metamaterials with artificial opal
title_full Wave absorption control in the new designed photonic metamaterials with artificial opal
title_fullStr Wave absorption control in the new designed photonic metamaterials with artificial opal
title_full_unstemmed Wave absorption control in the new designed photonic metamaterials with artificial opal
title_sort wave absorption control in the new designed photonic metamaterials with artificial opal
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Photonic metamaterials consisting of artificial opal with magnetic inclusions were considered, used in controllable microwave electronic devices. The analyzed structures consist of matrices of SiO2 nanospheres (diameter 200 - 400 nm) with included clusters of ferrite spinels (MnxCo0.6-xZn0.4Fe2O4, NixCo0.6-xZn0.4Fe2O4, LaxCo0.6-xZn0.4Fe2O4, NdxCo0.6-xZn0.4Fe2O4) in interspherical nanospacing (4 ÷ 7% concentration). The ellipsoidal clusters are polycrystalline, with spatial dimensions of 20 – 30 nm and grains of 5 – 12 nm. A controlled wave absorption was obtained in these high inductivity structures. Evolution of the wave attenuation coefficient, α[dB/m], in function of the applied magnetic field and particle inclusion size, for different content of the magnetic ions in the ferrite inclusion, have been determined at frequencies around the samples ferromagnetic resonance, by structural simulation. The test configuration was: sample inside the rectangular waveguide, mode TE10, in the frequency range 24 ÷ 40 GHz. The polarizing magnetic field for the ferrites was tested in the range of 0 ÷ 20 kOe and minimized by modifying the structure. The metamaterial design optimization was realized, controllable by different parameters at structure level. The ferromagnetic resonance influence on the control process was pointed out and also the particular results and effects which can be induced by the resonant behavior.
url https://doi.org/10.1051/matecconf/201817804004
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