Title :
Electrodynamic model and calculation of th effective permeability tensor for 3D magnet opal-based nanocomposites at microwaves
Author :
Makeeva, G.S. ; Golovanov, O.A. ; Rinkevich, A.B.
Author_Institution :
Penza State Univ., Penza, Russia
fDate :
Oct. 31 2012-Nov. 2 2012
Abstract :
The electrodynamic model of propagating of electromagnetic waves in 3D magnetic opal nanocomposites based on the solution of the Maxwell´s equations with electrodynamic boundary conditions, complemented by the Landau-Lifshitz equation with the exchange term is developed by using the decomposition approach on autonomous blocks with Floquet channels. By solving the system of quasi-simultaneous equations the real and imaginary parts of the diagonal and off-diagonal components of the effective permeability tensor of the Ni0.7Zn0.3Fe2O4 particles-containing magnetic opal as a function of DC magnetic field were calculated at a frequency f =26 GHz. The results of simulation taking into account the different number of ferromagnetic spherical nanoparticles, filling the octahedral SiO2 opal void regions, for the constant value of the filling factor show good agreement with the experimental data.
Keywords :
Maxwell equations; electrodynamics; electromagnetic wave propagation; magnetic particles; magnetic permeability; nanocomposites; nanomagnetics; nickel compounds; silicon compounds; zinc compounds; 3D magnet opal-based nanocomposites; 3D magnetic opal nanocomposites; DC magnetic field; Floquet channels; Landau-Lifshitz equation; Maxwell´s equations; Ni0.7Zn0.3Fe2O4; SiO2; autonomous blocks; decomposition approach; effective permeability tensor; electrodynamic boundary conditions; electrodynamic model; electromagnetic wave propagation; exchange term; ferromagnetic spherical nanoparticles; filling factor; frequency 26 GHz; octahedral opal void regions; quasisimultaneous equations; Magnetic domains; Magnetic resonance imaging; Magnetomechanical effects; Mathematical model; Nanocomposites; Nanoparticles; Saturation magnetization; boundary conditions; diffraction; electromagnetic propagation; magnetization; mathematical model; nanocomposite; nanoparticles; propagation constants;
Conference_Titel :
Radar Conference (EuRAD), 2012 9th European
Conference_Location :
Amsterdam
Print_ISBN :
978-1-4673-2471-7