Abstract
Structural and thermal properties of BiFeO3 under compressive epitaxial strain are investigated using a shell model fitted to first-principles calculations. We show that a model developed for the bulk describes properly the behavior of the compound as function of the strain, including the appearance of tetragonallike phase with a large c/a ratio. The obtained temperature-strain phase diagram reproduces several features observed experimentally in thin films. Molecular dynamic simulations show that morphotropic phase boundary separating the R-like and T-like regions is temperature independent but with different phases along the transition region. The microscopic analysis of the temperature-strain phase diagram emphasizes the relevance of the interplay between polarization, oxygen octahedron rotations, and strain.
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CITATION STYLE
Graf, M., Sepliarsky, M., & Stachiotti, M. G. (2016). Atomic-level study of BiFe O3 under epitaxial strain. Physical Review B, 94(5). https://doi.org/10.1103/PhysRevB.94.054101
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