Computer modeling of point defects, impurity self-ordering effects and surfaces in advanced perovskite ferroelectrics

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Abstract

The calculated optical properties of basic point defects - F-type centers and hole polarons - in KNbO3 perovskite crystals are used for the interpretation of available experimental data. The results of quantum chemical calculations for perovskite KNbxTa1-xO3 solid solutions are presented for x = 0, 0.125, 0.25, 0.75, and 1. An analysis of the optimized atomic and electronic structure clearly demonstrates that several nearest Nb atoms substituting for Ta in KTaO3 - unlike Ta impurities in KNbO3 - reveal a self-ordering effect, which probably triggers the ferroelectricity observed in KNbxTa1-xO3. Lastly, the (110) surface relaxations are calculated for SrTiO3 and BaTiO3 perovskites. The positions of atoms in 16 near-surface layers placed atop a slab of rigid ions are optimized using the classical shell model. Strong surface rumpling and surface-induced dipole moments perpendicular to the surface are predicted for both the O-terminated and Ti-terminated surfaces.

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Borstel, G., Kotomin, E. A., Eglitis, R. I., & Heifets, E. (2000). Computer modeling of point defects, impurity self-ordering effects and surfaces in advanced perovskite ferroelectrics. Acta Physica Polonica A, 98(5), 469–481. https://doi.org/10.12693/APhysPolA.98.469

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