TY - JOUR
T1 - Combined molecular dynamics-spin dynamics simulations of BCC iron
AU - Perera, Dilina
AU - Landau, David P.
AU - Nicholson, Don M.
AU - Stocks, G. Malcolm
AU - Eisenbach, Markus
AU - Yin, Junqi
AU - Brown, Gregory
PY - 2014
Y1 - 2014
N2 - Using a classical model that treats translational and spin degrees of freedom on an equal footing, we study phonon-magnon interactions in BCC iron with combined molecular and spin dynamics methods. The atomic interactions are modeled via an empirical many-body potential while spin dependent interactions are established through a Hamiltonian of the Heisenberg form with a distance dependent magnetic exchange interaction obtained from first principles electronic structure calculations. The temporal evolution of translational and spin degrees of freedom was determined by numerically solving the coupled equations of motion, using an algorithm based on the second order Suzuki-Trotter decomposition of the exponential operators. By calculating Fourier transforms of space- and time-displaced correlation functions, we demonstrate that the the presence of lattice vibrations leads to noticeable softening and damping of spin wave modes. As a result of the interplay between lattice and spin subsystems, we also observe additional longitudinal spin wave excitations, with frequencies which coincide with that of the longitudinal lattice vibrations.
AB - Using a classical model that treats translational and spin degrees of freedom on an equal footing, we study phonon-magnon interactions in BCC iron with combined molecular and spin dynamics methods. The atomic interactions are modeled via an empirical many-body potential while spin dependent interactions are established through a Hamiltonian of the Heisenberg form with a distance dependent magnetic exchange interaction obtained from first principles electronic structure calculations. The temporal evolution of translational and spin degrees of freedom was determined by numerically solving the coupled equations of motion, using an algorithm based on the second order Suzuki-Trotter decomposition of the exponential operators. By calculating Fourier transforms of space- and time-displaced correlation functions, we demonstrate that the the presence of lattice vibrations leads to noticeable softening and damping of spin wave modes. As a result of the interplay between lattice and spin subsystems, we also observe additional longitudinal spin wave excitations, with frequencies which coincide with that of the longitudinal lattice vibrations.
UR - http://www.scopus.com/inward/record.url?scp=84896927310&partnerID=8YFLogxK
U2 - 10.1088/1742-6596/487/1/012007
DO - 10.1088/1742-6596/487/1/012007
M3 - Conference article
AN - SCOPUS:84896927310
SN - 1742-6588
VL - 487
JO - Journal of Physics: Conference Series
JF - Journal of Physics: Conference Series
IS - 1
M1 - 012007
T2 - 7th Brazilian Meeting on Simulational Physics, BMSP 2013
Y2 - 5 August 2013 through 10 August 2013
ER -