<i>Ab initio</i> Temperature-Dependent Phonons and Electron-Phonon Coupling in SrTiO<sub>3</sub>
ORAL
Abstract
Strong anharmonicity in perovskites and other structurally complex semiconductors and oxides leads to temperature dependent phonon frequencies and phase transitions, both of which pose a challenge to computing electron-phonon scattering from first principles. Here, we show an approach to calculate temperature-dependent lattice vibrations and electron-phonon coupling in such strongly anharmonic crystals. Our method combines density functional perturbation theory (DFPT), the temperature dependent effective potential (TDEP) method, and a new approach to correctly include in the lattice dynamics the long-range dipole-dipole interactions. We apply this method to the canonical perovskite SrTiO3, for which we compute the phonon dispersions, electron-phonon coupling (including the soft modes) and electron mobility for a range of temperatures spanning the tetragonal-to-cubic phase transition. Our work enables ab initio calculations of electron-phonon scattering and charge transport in perovskites and other anharmonic crystals with multiple phase transitions.
*This work was supported by the Joint Center for Artificial Photosynthesis, a DOE Energy Innovation Hub, supported through the Office of Science of the U.S. Department of Energy under Award Number DE-SC0004993.
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Presenters
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Jin-Jian Zhou
- Caltech
- Department of Applied Physics and Materials Science, California Institute of Technology
- Applied Physics and Materials Science, Caltech
- Applied Physics and Materials Science, California Institute of Technology