Molecular dynamics, spin dynamics study of phonon-magnon interactions in BCC iron

ORAL

Abstract

By combining an atomistic many-body potential (Finnis-Sinclair) with a classical Heisenberg-like spin Hamiltonian, we perform combined molecular and spin dynamics simulations to investigate phonon-magnon interactions in BCC iron. The coupling between atomic and spin degrees of freedom is established via a distance dependent exchange interaction derived from first principles electronic structure calculations. Coupled equations of motion are integrated using a second order Suzuki-Trotter decomposition of the exponential time evolution operator. To investigate the effect of lattice vibrations on spin wave spectrum, we calculate spin-spin and density-density dynamic structure factors S(q, $\omega$), and compare that to the results obtained from pure spin dynamics simulations performed on a rigid lattice. In the presence of lattice vibrations, we observe an additional peak in the longitudinal spin-spin dynamic structure factor which coincides with the peak position in density-density dynanmic structure factor.

*Research sponsored by the U.S. Department of Energy, Office of Basic Energy Sciences, Materials Sciences and Engineering Division, "Center for Defect Physics," an Energy Frontier Research Center

Authors

  • Dilina Perera

    • Center for Simulational Physics, The University of Georgia
  • David P. Landau

    • Center for Simulational Physics, The University of Georgia
    • Center for Simulational Physics, University of Georgia, U.S.A.
  • G. Malcolm Stocks

    • Materials Science and Technology Division, Oak Ridge National Laboratory
    • Oak Ridge National Lab
    • Oak Ridge National Laboratory
    • Oak Ridge National Laboratory, Oak Ridge, TN 37831
  • Don Nicholson

    • Oak Ridge National Lab
    • Oak Ridge National Laboratory
    • Oak Ridge National laboratory
    • ORNL
  • Marcu Eisenbach

    • Oak Ridge National Laboratory
  • Junqi Yin

    • Oak Ridge National Laboratory