Nonlinear sub-switching regime of magnetization dynamics in photo-magnetic garnets
arXiv:2211.08048 · doi:10.1103/PhysRevB.107.134405
Abstract
We analyze, both experimentally and numerically, the nonlinear regime of the photo-induced coherent magnetization dynamics in cobalt-doped yttrium iron garnet films. Photo-magnetic excitation with femtosecond laser pulses reveals a strongly nonlinear response of the spin subsystem with a significant increase of the effective Gilbert damping. By varying both laser fluence and the external magnetic field, we show that this nonlinearity originates in the anharmonicity of the magnetic energy landscape. We numerically map the parameter workspace for the nonlinear photo-induced spin dynamics below the photo-magnetic switching threshold. Corroborated by numerical simulations of the Landau-Lifshitz-Gilbert equation, our results highlight the key role of the cubic symmetry of the magnetic subsystem in reaching the nonlinear spin precession regime. These findings expand the fundamental understanding of laser-induced nonlinear spin dynamics as well as facilitate the development of applied photo-magnetism.
References in corpus (8)
- Perspective: Ultrafast magnetism and THz spintronics
- Ultrafast photo-magnetic recording in transparent medium
- Relativistic theory of spin relaxation mechanisms in the Landau-Lifshitz-Gilbert equation of spin dynamics
- THz Field-induced Spin Dynamics in Ferrimagnetic Iron Garnets
- Laser Controlled Spin Dynamics of Ferromagnetic Thin Film from Femtosecond to Nanosecond Timescale
- Activation of additional energy dissipation processes in the magnetization dynamics of epitaxial chromium dioxide films
- Theory of inertial spin dynamics in anisotropic ferromagnets
- Magnetization dynamics and damping due to electron-phonon scattering in a ferrimagnetic exchange model