Engineering approach to calculate the effective permeability of a composite material with unbiased ferrimagnetic nanoparticles

A step-by-step engineering approach offering a model for the characterization of magnetic composite materials is presented. The modelling of composite materials containing unbiased ferrites is a subject of great interest, due to extended range of applications, such as hyperthermia and microwave abso...

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Published inIET microwaves, antennas & propagation Vol. 11; no. 5; pp. 749 - 754
Main Authors Kyriakou, John G, Chryssomallis, Michael T
Format Journal Article
LanguageEnglish
Published The Institution of Engineering and Technology 15.04.2017
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ISSN1751-8725
1751-8733
DOI10.1049/iet-map.2016.0593

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Abstract A step-by-step engineering approach offering a model for the characterization of magnetic composite materials is presented. The modelling of composite materials containing unbiased ferrites is a subject of great interest, due to extended range of applications, such as hyperthermia and microwave absorbers. Here, unbiased ferrites simplify the application structure, as they do not require a biasing field, while they can resonate at low microwave frequencies due to their innate magnetocrystalline anisotropy field. However, so far there has not been an explicit organized step-by-step engineering modelling approach. The homogenization approximation formula is used in conjunction with Landau–Lifshitz–Gilbert equation solution to systematically compute the complex effective permeability and compare it with published measurements, from an engineer's result-focused perspective. For further validation, simulations of these composite materials as periodic structures are carried out, which additionally provide useful insight on the electromagnetic field distributions within the composites and are often more accurate. The results of the proposed procedure show good agreement with the experimental ones, which validate it, while the relatively greater error appears for the imaginary parts. The EM field distributions suggest that better focusing around the nanoparticles is achieved when those are large enough to form magnetic domains.
AbstractList A step‐by‐step engineering approach offering a model for the characterization of magnetic composite materials is presented. The modelling of composite materials containing unbiased ferrites is a subject of great interest, due to extended range of applications, such as hyperthermia and microwave absorbers. Here, unbiased ferrites simplify the application structure, as they do not require a biasing field, while they can resonate at low microwave frequencies due to their innate magnetocrystalline anisotropy field. However, so far there has not been an explicit organized step‐by‐step engineering modelling approach. The homogenization approximation formula is used in conjunction with Landau–Lifshitz–Gilbert equation solution to systematically compute the complex effective permeability and compare it with published measurements, from an engineer's result‐focused perspective. For further validation, simulations of these composite materials as periodic structures are carried out, which additionally provide useful insight on the electromagnetic field distributions within the composites and are often more accurate. The results of the proposed procedure show good agreement with the experimental ones, which validate it, while the relatively greater error appears for the imaginary parts. The EM field distributions suggest that better focusing around the nanoparticles is achieved when those are large enough to form magnetic domains.
Author Kyriakou, John G
Chryssomallis, Michael T
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  givenname: Michael T
  surname: Chryssomallis
  fullname: Chryssomallis, Michael T
  email: mchrysso@ee.duth.gr
  organization: Electrical and Computer Engineering Department, Democritus University of Thrace, Xanthi, 67100, Greece
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Cites_doi 10.1063/1.363979
10.1103/PhysRevB.70.092401
10.1109/IEMBS.2010.5626583
10.1103/PhysRevE.70.016608
10.1063/1.1570935
10.1117/12.875288
10.1016/j.jmmm.2011.06.061
10.1023/A:1026511515005
10.1263/jbb.100.1
10.1088/0022-3727/41/13/135005
10.1039/c2cs15337h
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Issue 5
Keywords periodic structures
hyperthermia absorbers
step-by-step engineering approach
microwave absorbers
magnetic anisotropy
Landau levels
Landau-Lifshitz-Gilbert equation
nanocomposites
magnetic composite materials
magnetic permeability
magnetic domains
nanoparticles
ferrites
electromagnetic fields
homogenisation approximation
effective permeability
unbiased ferrites
unbiased ferrimagnetic nanoparticles
electromagnetic field distributions
magnetocrystalline anisotropy field
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Snippet A step-by-step engineering approach offering a model for the characterization of magnetic composite materials is presented. The modelling of composite...
A step‐by‐step engineering approach offering a model for the characterization of magnetic composite materials is presented. The modelling of composite...
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SubjectTerms Composite materials
effective permeability
electromagnetic field distributions
electromagnetic fields
Ferrites
homogenisation approximation
Homogenizing
hyperthermia absorbers
Landau levels
Landau‐Lifshitz‐Gilbert equation
magnetic anisotropy
magnetic composite materials
magnetic domains
magnetic permeability
magnetocrystalline anisotropy field
Mathematical analysis
Mathematical models
microwave absorbers
Microwave antennas
Modelling
nanocomposites
Nanoparticles
periodic structures
Research Article
step‐by‐step engineering approach
unbiased ferrimagnetic nanoparticles
unbiased ferrites
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Title Engineering approach to calculate the effective permeability of a composite material with unbiased ferrimagnetic nanoparticles
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