English

Huge ultrafast spin Seebeck effect mediated by laser-excited superdiffusive magnon currents

Mesoscale and Nanoscale Physics 2026-05-21 v1 Materials Science

Abstract

Subpicosecond laser excitation of ferromagnetic metals induces strongly nonequilibrium dynamics involving scattering and transport of electrons, phonons, and magnons. Widely used theoretical approaches, such as the three-temperature model and diffusion equations, are ill-suited to capture these processes on ultrafast timescales. Here, we present an ab initio-parameterized microscopic framework that incorporates nonthermal magnon scattering and transport via the quantum Boltzmann equation. We apply this approach to simulate ultrafast laser-induced demagnetization in bcc Fe films. The model predicts an ultrafast spin Seebeck effect, characterized by a strong burst of fast-moving magnonic spin current reaching technologically relevant amplitudes. Furthermore, we identify a superdiffusive transport regime: a crossover from initially ballistic magnon transport to a diffusive regime at later times. To connect our theoretical predictions to experimentally accessible observables, we calculate the magneto-optical Kerr angles resulting from the predicted depth-resolved magnetization profiles. Our framework provides a route to describe ultrafast nonthermal magnon transport beyond diffusive models and will aid in the design and interpretation of time-resolved spin-transport experiments.

Keywords

Cite

@article{arxiv.2605.21389,
  title  = {Huge ultrafast spin Seebeck effect mediated by laser-excited superdiffusive magnon currents},
  author = {Luca Mikadze and Peter M. Oppeneer and Markus Weißenhofer},
  journal= {arXiv preprint arXiv:2605.21389},
  year   = {2026}
}