English

Manipulation of ferromagnetism with a light-driven nonlinear Edelstein-Zeeman field

Mesoscale and Nanoscale Physics 2026-03-06 v1 Strongly Correlated Electrons

Abstract

Optical control of magnetization is often symmetry-forbidden because electric fields and magnetization transform differently under inversion and time-reversal. However, through even-order nonlinear response, optical excitation can generate a nonequilibrium magnetic density (the nonlinear Edelstein effect) that acts as an internal Edelstein-Zeeman field coupling to slower magnetic degrees of freedom. Here we demonstrate non-thermal, ultrafast optical control of ferromagnetism in the centrosymmetric van der Waals semiconductor Cr2_2Ge2_2Te6_6 via a resonant nonlinear Edelstein effect. Using time-domain THz emission spectroscopy under near-infrared excitation, we directly observe magnetic dipole radiation arising from optically driven magnetization dynamics. The polarization, fluence, and temperature dependences of the THz emission are quantitatively captured by a mean-field description of a weakly anisotropic Heisenberg ferromagnet subject to an Edelstein-Zeeman field. Our results establish a general nonequilibrium route to optical control of magnetism in centrosymmetric materials.

Keywords

Cite

@article{arxiv.2603.05456,
  title  = {Manipulation of ferromagnetism with a light-driven nonlinear Edelstein-Zeeman field},
  author = {Yinchuan Lv and W. Joe Meese and Azel Murzabekova and Jennifer Freedberg and Changjun Lee and Yiming Sun and Joshua Wakefield and Takashi Kurumaji and Joseph Checkelsky and Fahad Mahmood},
  journal= {arXiv preprint arXiv:2603.05456},
  year   = {2026}
}

Comments

31 pages, 13 figures, 1 table