A crystal-field route to THz-driven magnetization
Abstract
Light carries angular momentum, but the microscopic pathways that transform it into magnetization remain elusive. Here we establish that crystal-field excitations, historically viewed primarily as equilibrium spectroscopic fingerprints of localized 4 electrons, constitute an active microscopic route through which circularly-polarized terahertz (THz) light creates magnetic polarization. Using wavelength-selective ultrafast Faraday spectroscopy on the paramagnetic insulator CeF, we show that resonant excitation of localized 4 crystal-field transitions generates a helicity-dependent magnetization that survives for up to about 100 ps. Most strikingly, while the optical helicity is held fixed, the THz-driven response reverses sign as the excitation wavelength is tuned across the crystal-field resonance. The resulting dispersive spectral response follows the crystal-field excitation spectrum rather than that of optical phonons, and is captured by resonant electronic theory of the inverse Faraday effect. Our results identify crystal-field excitations as a previously unrecognized dynamical reservoir for optical angular momentum and broaden the microscopic pathways through which THz light can create and manipulate magnetic states.
Cite
@article{arxiv.2607.08519,
title = {A crystal-field route to THz-driven magnetization},
author = {T. Zalewski and M. S. Mrudul and Y. Lee and M. Weissenhofer and A. V. Boris and P. M. Oppeneer and A. Kirilyuk and C. S. Davies},
journal= {arXiv preprint arXiv:2607.08519},
year = {2026}
}
Comments
35 pages, 3 figures, 10 supplementary figures, and 2 supplementary tables