Electric field manipulation of magnetization in an insulating dilute ferromagnet through piezoelectromagnetic coupling
Abstract
We report magnetization changes generated by an electric field in ferromagnetic GaMnN grown by molecular beam epitaxy. Two classes of phenomena have been revealed. First, over a wide range of magnetic fields, the magnetoelectric signal is odd in the electric field and reversible. Employing a macroscopic spin model and atomistic Landau-Lifshitz-Gilbert theory with Langevin dynamics, we demonstrate that the magnetoelectric response results from the inverse piezoelectric effect that changes the trigonal single-ion magnetocrystalline anisotropy. Second, in the metastable regime of ferromagnetic hystereses, the magnetoelectric effect becomes non-linear and irreversible in response to a time-dependent electric field, which can reorient the magnetization direction. Interestingly, our observations are similar to those reported for another dilute ferromagnetic semiconductor Cr(BiSb)Te, in which magnetization was monitored as a function of the gate electric field. Those results constitute experimental support for theories describing the effects of time-dependent perturbation upon glasses far from thermal equilibrium in terms of an enhanced effective temperature.
Cite
@article{arxiv.2406.13534,
title = {Electric field manipulation of magnetization in an insulating dilute ferromagnet through piezoelectromagnetic coupling},
author = {D. Sztenkiel and K. Gas and N. Gonzalez Szwacki and M. Foltyn and C. Sliwa and T. Wojciechowski and J. Z. Domagala and D. Hommel and M. Sawicki and T. Dietl},
journal= {arXiv preprint arXiv:2406.13534},
year = {2025}
}
Comments
18 pages, 10 Figures