Strong spin-orbit induced Gilbert damping and g-shift in iron-platinum nanoparticles
Abstract
The shape of ferromagnetic resonance spectra of highly dispersed, chemically disordered Fe_{0.2}Pt_{0.8} nanospheres is perfectly described by the solution of the Landau-Lifshitz-Gilbert (LLG) equation excluding effects by crystalline anisotropy and superparamagnetic fluctuations. Upon decreasing temperature, the LLG damping and a negative g-shift, g(T)-g_0, increase proportional to the particle magnetic moments determined from the Langevin analysis of the magnetization isotherms. These novel features are explained by the scattering of the magnon from an electron-hole (e/h) pair mediated by the spin-orbit coupling, while the sd-exchange can be ruled out. The large saturation values, and , indicate the dominance of an overdamped 1 meV e/h-pair which seems to originate from the discrete levels of the itinerant electrons in the d_p=3 nm nanoparticles.
Cite
@article{arxiv.0708.0463,
title = {Strong spin-orbit induced Gilbert damping and g-shift in iron-platinum nanoparticles},
author = {Jürgen Kötzler and Detlef Görlitz and Frank Wiekhorst},
journal= {arXiv preprint arXiv:0708.0463},
year = {2009}
}
Comments
8 pages, 4 figures, accepted for publication in Phys. Rev. B (http://prb.aps.org/)