Micromagnetic simulations of spinel ferrite particles
Abstract
This paper presents the results of simulations of the magnetization field {\it ac} response (at to GHz) of various submicron ferrite particles (cylindrical dots). The ferrites in the present simulations have the spinel structure, expressed here by MZnFeO (where M stands for a divalent metal), and the parameters chosen were the following: (a) for : M = \{ Fe, Mn, Co, Ni, Mg, Cu \}; (b) for : M = \{ Fe, Mg \} (mixed ferrites). These runs represent full 3D micromagnetic (one-particle) ferrite simulations. We find evidences of confined spin waves in all simulations, as well as a complex behavior nearby the main resonance peak in the case of the M = \{ Mg, Cu \} ferrites. A comparison of the and cases for fixed M reveals a significant change in the spectra in M = Mg ferrites, but only a minor change in the M = Fe case. An additional larger scale simulation of a by particle array was performed using similar conditions of the FeO (magnetite; , M = Fe) one-particle simulation. We find that the main resonance peak of the FeO one-particle simulation is disfigured in the corresponding 3 by 3 particle simulation, indicating the extent to which dipolar interactions are able to affect the main resonance peak in that magnetic compound.
Cite
@article{arxiv.1005.3169,
title = {Micromagnetic simulations of spinel ferrite particles},
author = {Christine C. Dantas and Adriana M. Gama},
journal= {arXiv preprint arXiv:1005.3169},
year = {2010}
}
Comments
35 pages, 11 figures, Journal of Magnetism and Magnetic Materials, in press.