Magnetization switching in the inertial regime
arXiv:2107.08234 · doi:10.1103/PhysRevB.105.054415
Abstract
We have numerically solved the Landau-Lifshitz-Gilbert (LLG) equation in its standard and inertial forms to study the magnetization switching dynamics in a thin film ferromagnet. The dynamics is triggered by ultrashort magnetic field pulses of varying width and amplitude in the picosecond and Tesla range. We have compared the solutions of the two equations in terms of switching characteristic, speed and energy analysis. Both equations return qualitatively similar switching dynamics, characterized by regions of slower precessional behavior and faster ballistic motion. In case of inertial dynamics, ballistic switching is found in a 25 % wider region in the parameter space given by the magnetic field amplitude and width. The energy analysis of the dynamics is qualitatively different for the standard and inertial LLG equations. In the latter case, an extra energy channel, interpreted as the kinetic energy of the system, is available. Such extra channel is responsible for a resonant energy absorption at THz frequencies, consistent with the occurence of spin nutation.
9 pages, 6 figures
References in corpus (10)
- Relativistic theory of spin relaxation mechanisms in the Landau-Lifshitz-Gilbert equation of spin dynamics
- Quantum Brownian Motion for Magnets
- Nutation in antiferromagnetic resonance
- Nutation Resonance in Ferromagnets
- Anatomy of inertial magnons in ferromagnets
- Dispersion relation of nutation surface spin waves in ferromagnets
- CoFeAl full Heusler compound based spintronic terahertz emitter
- Theory of magnetic inertial dynamics in two-sublattice ferromagnets
- An observable effect of spin inertia in slow magneto-dynamics: Increase of the switching error rates in nanoscale ferromagnets
- Large Magnetic Moment in Flexoelectronic Silicon at Room Temperature