English

The structure of electronic polarization and its strain dependence

Materials Science 2009-01-08 v1

Abstract

The ϕ(\kpp)\kpp\phi(\kpp)\sim \kpp relation is called polarization structure. By density functional calculations, we study the polarization structure in ferroelectric perovskite PbTiO3_3, revealing (1) the \kpp\kpp point that contributes most to the electronic polarization, (2) the magnitude of bandwidth, and (3) subtle curvature of polarization dispersion. We also investigate how polarization structure in PbTiO3_3 is modified by compressive inplane strains. The bandwidth of polarization dispersion in PbTiO3_3 is shown to exhibit an unusual decline, though the total polarization is enhanced. As another outcome of this study, we formulate an analytical scheme for the purpose of identifying what determine the polarization structure at arbitrary \kpp\kpp points by means of Wannier functions. We find that ϕ(\kpp)\phi(\kpp) is determined by two competing factors: one is the overlaps between neighboring Wannier functions within the plane {\it perpendicular} to the polarization direction, and the other is the localization length {\it parallel} to the polarization direction. Inplane strain increases the former while decreases the latter, causing interesting non-monotonous effects on polarization structure. Finally, polarization dispersion in another paradigm ferroelectric BaTiO3_3 is discussed and compared with that of PbTiO3_3.

Keywords

Cite

@article{arxiv.0808.1587,
  title  = {The structure of electronic polarization and its strain dependence},
  author = {Yanpeng Yao and Huaxiang Fu},
  journal= {arXiv preprint arXiv:0808.1587},
  year   = {2009}
}

Comments

5 Figures

R2 v1 2026-06-21T11:09:31.071Z