English

Ultrafast Demagnetization Dynamics Due to Electron-Electron Scattering and Its Relation to Momentum Relaxation in Ferromagnets

Materials Science 2022-08-05 v1

Abstract

We analyze theoretically the demagnetization dynamics in a ferromagnetic model system due to the interplay of spin-orbit coupling and electron-electron Coulomb scattering. We compute the kk-resolved electronic reduced spin-density matrix including precessional dynamics around internal spin-orbit and exchange fields as well as the electron-electron Coulomb scattering for densities and spin coherences. Based on a comparison with numerical solutions of the full Boltzmann scattering integrals, we establish that the kk-resolved reduced spin-density matrix dynamics are well described using a simpler generalized relaxation-time ansatz for the reduced spin-density matrix. This ansatz allows one to relate the complicated scattering dynamics underlying the demagnetization dynamics to a physically meaningful momentum relaxation time τ\tau. Our approach reproduces the behaviors of the demagnetization time τm1/τ\tau_{m} \propto 1/\tau and τmτ\tau_{m} \propto \tau for the limits of short and long τ\tau, respectively, and is also valid for the intermediate regime. The ansatz thus provides a tool to include the correct demagnetization behavior in approaches that treat other contributions to the magnetization dynamics such as transport or magnon/phonon dynamics.

Keywords

Cite

@article{arxiv.2208.02356,
  title  = {Ultrafast Demagnetization Dynamics Due to Electron-Electron Scattering and Its Relation to Momentum Relaxation in Ferromagnets},
  author = {Svenja Vollmar and Kai Leckron and Hans Christian Schneider},
  journal= {arXiv preprint arXiv:2208.02356},
  year   = {2022}
}