Unifying microscopic theories for the phono-magnetic effect
Abstract
Phonon angular momentum induces an effective magnetic field, a phenomenon called phono-magnetic effect, which has been measured to vary significantly in size. Here, we compare three approaches for deriving the effective magnetic field of a phonon, using electron-phonon coupling and orbital magnetism. The adiabatic approach assumes a slow ionic motion, keeping electrons in the ground state. The perturbative approach treats the electron-phonon interaction as a perturbation to the electronic ground state, and the Floquet approach is based on the time-periodicity of the circular ionic motion. We show that all three approaches lead to the same effective Hamiltonian in the low-frequency limit, which moves us closer towards a unified theory of the phono-magnetic effect. Furthermore, we identify two phononic contributions to the sample magnetization, spontaneous and induced. Thus, we clarify the role of the effective magnetic field in the phonon-induced magnetization. We conclude by providing a numerical estimate for the effective magnetic field in SrTiO.
Cite
@article{arxiv.2608.04754,
title = {Unifying microscopic theories for the phono-magnetic effect},
author = {Natalia Shabala and Finja Tietjen and Ylva Liljegren and R. Matthias Geilhufe},
journal= {arXiv preprint arXiv:2608.04754},
year = {2026}
}
Comments
10 pages, 2 figures