English

Sr-induced dipole scatter in BST: Insights from MD simulations using a transferable bond valence-based interatomic potential

Materials Science 2019-12-04 v1 Mesoscale and Nanoscale Physics

Abstract

In order to design next-generation ferroelectrics, a microscopic understanding of their macroscopic properties is critical. One means to achieving an atomistic description of ferroelectric and dielectric phenomena is classical molecular dynamics simulations. Previously, we have shown that interatomic potentials based on the bond valence molecular dynamics (BVMD) method can be used to study structural phase transitions, ferroelectric domain nucleation, and domain wall migration in several perovskite oxides and fixed-composition binary and ternary alloys. Most modern devices, however, use variable-composition perovskite oxide alloys such as Bax_xSr1x_{1-x}TiO3_3 (BST). In this paper, we extend our bond valence approach to BST solid solutions and, in so doing, show that the potential parameters for each element are transferable between materials with different xx. Using this potential, we perform BVMD simulations investigating the temperature and composition dependence of the lattice constants, Ti displacements, and ferroelectric polarization of BST and find that our predictions match experiments and first-principles theory. Additionally, based on a detailed analysis of local dipole distributions, we demonstrate that substitution of Sr for Ba scrambles dipoles, reduces global polarization, and enhances the order-disorder character of the ferroelectric-paraelectric phase transition.

Keywords

Cite

@article{arxiv.1905.13201,
  title  = {Sr-induced dipole scatter in BST: Insights from MD simulations using a transferable bond valence-based interatomic potential},
  author = {Robert B. Wexler and Yubo Qi and Andrew M. Rappe},
  journal= {arXiv preprint arXiv:1905.13201},
  year   = {2019}
}

Comments

19 pages, 7 figures

R2 v1 2026-06-23T09:33:41.587Z