English

Dynamic Simulation of Structural Phase Transitions in Magnetic Iron

Materials Science 2017-09-27 v1

Abstract

The occurrence of bcc-fcc (α\alpha-γ\gamma) and fcc-bcc (γ\gamma-δ\delta) phase transitions in magnetic iron stems from the interplay between magnetic excitations and lattice vibrations. However, this fact has never been proven by a direct dynamic simulation, treating non-collinear magnetic fluctuations and dynamics of atoms, and their coupling at a finite temperature. Starting from a large set of data generated by ab initio simulations, we derive non-collinear magnetic many-body potentials for bcc and fcc iron describing fluctuations in the vicinity of near perfect lattice positions. We then use spin-lattice dynamics simulations to evaluate the difference between free energies of bcc and fcc phases, assessing their relative stability within a unified dynamic picture. We find two intersections between the bcc and fcc free energy curves, which correspond to α\alpha-γ\gamma bcc-fcc and γ\gamma-δ\delta fcc-bcc phase transitions. The maximum fcc-bcc free energy difference over the temperature interval between the two phase transition points is 2 meV, in agreement with other experimental and theoretical estimates.

Keywords

Cite

@article{arxiv.1706.07635,
  title  = {Dynamic Simulation of Structural Phase Transitions in Magnetic Iron},
  author = {Pui-Wai Ma and S. L. Dudarev and Jan S. Wróbel},
  journal= {arXiv preprint arXiv:1706.07635},
  year   = {2017}
}
R2 v1 2026-06-22T20:27:35.289Z