Theory of Magnetodynamics Induced by Spin Torque in Perpendicularly Magnetized Thin Films
Abstract
A nonlinear model of spin-wave excitation using a point contact in a thin ferromagnetic film is introduced. Large-amplitude magnetic solitary waves are computed, which help explain recent spin-torque experiments. Numerical simulations of the fully nonlinear model predict excitation frequencies in excess of 0.2 THz for contact diameters smaller than 6 nm. Simulations also predict a saturation and redshift of the frequency at currents large enough to invert the magnetization under the point contact. The theory is approximated by a cubic complex Ginzburg-Landau type equation. The mode’s nonlinear frequency shift is found by use of perturbation techniques, whose results agree with those of direct numerical simulations.
- Publication:
-
Physical Review Letters
- Pub Date:
- December 2005
- DOI:
- arXiv:
- arXiv:cond-mat/0509265
- Bibcode:
- 2005PhRvL..95z7206H
- Keywords:
-
- 75.30.Ds;
- 75.40.Gb;
- 75.70.-i;
- 76.50.+g;
- Spin waves;
- Dynamic properties;
- Magnetic properties of thin films surfaces and interfaces;
- Ferromagnetic antiferromagnetic and ferrimagnetic resonances;
- spin-wave resonance;
- Condensed Matter - Other Condensed Matter;
- Condensed Matter - Materials Science
- E-Print:
- 5 pages, 4 figures, submitted to PRL