English

A unified first-principles study of Gilbert damping, spin-flip diffusion and resistivity in transition metal alloys

Materials Science 2015-03-17 v3 Mesoscale and Nanoscale Physics

Abstract

Using a formulation of first-principles scattering theory that includes disorder and spin-orbit coupling on an equal footing, we calculate the resistivity ρ\rho, spin flip diffusion length lsfl_{sf} and the Gilbert damping parameter α\alpha for Ni1x_{1-x}Fex_x substitutional alloys as a function of xx. For the technologically important Ni80_{80}Fe20_{20} alloy, permalloy, we calculate values of ρ=3.5±0.15\rho = 3.5 \pm 0.15 μ\muOhm-cm, lsf=5.5±0.3l_{sf}=5.5 \pm 0.3 nm, and α=0.0046±0.0001\alpha= 0.0046 \pm 0.0001 compared to experimental low-temperature values in the range 4.24.84.2-4.8 μ\muOhm-cm for ρ\rho, 5.06.05.0-6.0 nm for lsfl_{sf}, and 0.0040.0130.004-0.013 for α\alpha indicating that the theoretical formalism captures the most important contributions to these parameters.

Keywords

Cite

@article{arxiv.1010.1626,
  title  = {A unified first-principles study of Gilbert damping, spin-flip diffusion and resistivity in transition metal alloys},
  author = {Anton A. Starikov and Paul J. Kelly and Arne Brataas and Yaroslav Tserkovnyak and Gerrit E. W. Bauer},
  journal= {arXiv preprint arXiv:1010.1626},
  year   = {2015}
}

Comments

Published in Physical Review Letters