Magnetization dynamics and spin pumping induced by standing elastic waves
A. V. Azovtsev, N. A. Pertsev

TL;DR
This paper uses micromagnetic simulations to study how standing elastic waves induce complex, inhomogeneous magnetization dynamics and spin currents in a ferromagnetic film, revealing potential for experimental detection.
Contribution
It provides a detailed analysis of magnetization behavior under standing elastic waves and links the dynamics to measurable spin currents via the inverse spin Hall effect.
Findings
Standing elastic waves create inhomogeneous magnetization patterns.
Magnetization precession amplitude peaks near resonance frequencies.
Generated spin currents are strong enough for experimental detection.
Abstract
The magnetization dynamics induced by standing elastic waves excited in a thin ferromagnetic film is described with the aid of micromagnetic simulations taking into account the magnetoelastic coupling between spins and lattice strains. The simulations have been performed for the 2 nm thick Fe81Ga19 film dynamically strained by longitudinal and transverse standing waves with various frequencies, which span a wide range around the resonance frequency nu_res of coherent magnetization precession in unstrained Fe81Ga19 film. It is found that standing elastic waves give rise to complex local magnetization dynamics and spatially inhomogeneous dynamic magnetic patterns. The spatio-temporal distributions of the magnetization oscillations in standing elastic waves have the form of standing spin waves with the same wavelength. Remarkably, the amplitude of magnetization precession does not go to…
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