4.2 Article

Microscopic picture of paraelectric perovskites from structural prototypes

Journal

PHYSICAL REVIEW RESEARCH
Volume 4, Issue 1, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevResearch.4.L012042

Keywords

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Funding

  1. Samsung Advanced Institute of Technology
  2. Swiss National Sci-ence Foundation [182892]
  3. Robert Bosch LLC
  4. Swiss National Supercomputing Centre CSCS [s1073]
  5. European Centre of Excellence MaX Materials Design at the Exascale [824143]
  6. MARVEL NCCR, a National Centre of Competence in Research

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Using first-principles molecular dynamics, we have discovered the persistence of intrinsic off-centerings in the cubic paraelectric phase of BaTiO3. These off-centerings are inconsistent with commonly used atomic-scale modeling methods. By employing systematic symmetry analysis, we have constructed representative structural models and defined energetically and dynamically stable prototypes. These findings are of significance for the computational engineering of functional materials.
We highlight with first-principles molecular dynamics the persistence of intrinsic < 111 > Ti off-centerings for BaTiO3 in its cubic paraelectric phase. Intriguingly, these are inconsistent with the Pm (3) over barm space group often used to atomistically model this phase using density-functional theory or similar methods. Therefore, we deploy a systematic symmetry analysis to construct representative structural models in the form of supercells that satisfy a desired point symmetry but are built from the combination of lower-symmetry primitive cells. We define as structural prototypes the smallest of these that are both energetically and dynamically stable. Remarkably, two 40-atom prototypes can be identified for paraelectric BaTiO3; these are also common to many other ABO(3) perovskites. These prototypes can offer structural models of paraelectric phases that can be used for the computational engineering of functional materials. Last, we show that the emergence of B-cation off-centerings and the primitive-cell phonon instabilities is controlled by the equilibrium volume, in turn, dictated by the filler A cation.

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