DocumentCode :
1432867
Title :
Interactions of Electromagnetic Waves With 3-D Opal-Based Magnetophotonic Crystals at Microwave Frequencies
Author :
Pardavi-Horvath, M. ; Makeeva, G.S. ; Golovanov, O.A.
Author_Institution :
SEAS ECE, George Washington Univ., Washington, DC, USA
Volume :
47
Issue :
2
fYear :
2011
Firstpage :
341
Lastpage :
344
Abstract :
The propagation of electromagnetic waves at microwave frequencies was investigated numerically in SiO2 opal based magnetic nanostructures, using rigorous mathematical models solving Maxwell´s equations with electrodynamic boundary conditions, complemented by the Landau-Lifshitz equation. The numerical approach is based on the Galerkin´s projection method using the decomposition algorithm on autonomous blocks with Floquet channels. The opal structure consists of 250 nm SiO2 nanospheres, with inter-sphere voids infiltrated with octagonal nanoparticles of either Ni0.7Zn0.3Fe2O4 with 4πMs=5 kG, or NiFe2O4 with 4πMs=3.12 kG . Both the opal matrix and the ferrite are assumed to be lossy through complex dielectric constants. The field dependence of the complex wave number of the fundamental extraordinary mode of the propagating EMWs in the 3-D opal-based magnetophotonic crystals was determined for transverse orientation of the bias magnetic field at a frequency of 9.375 GHz. The numerical technique shows an excellent agreement when applied to model recent experimental data of waveguide measurements on similar ferrite opals.
Keywords :
Galerkin method; Maxwell equations; decomposition; electromagnetic wave propagation; ferrites; magnetic field effects; magnetic particles; nanocomposites; nanoparticles; numerical analysis; permittivity; photonic crystals; voids (solid); 3D opal-based magnetophotonic crystals; Floquet channels; Galerkin projection method; Landau-Lifshitz equation; Maxwell equations; autonomous blocks; bias magnetic field; complex wave number; decomposition algorithm; dielectric constants; electrodynamic boundary conditions; electromagnetic wave interactions; electromagnetic wave propagation; ferrite; frequency 9.375 GHz; infiltration; intersphere voids; mathematical model; microwave frequencies; nanospheres; octagonal nanoparticles; opal based magnetic nanostructures; opal structure; size 250 nm; Electromagnetic propagation in magnetic media; magnetic microwave devices; nanotechnology; numerical analysis;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2010.2083640
Filename :
5697349
Link To Document :
بازگشت