DFT+U+J electronic structure calculations of correlated Bi<sub>2</sub>CrAl<sub>3</sub>O<sub>9</sub>
ORAL
Abstract
First-principles calculations allow for the prediction and interpretation of the intrinsic properties of a system. Density functional theory calculations of the electronic structure of the multi-band magnetic insulator Bi2CrAl3O9 fail to corroborate experimental observations that suggest a magnetic ground state. Spin-polarized DFT calculations find basic agreement with antiferromagnetic order, which has been putatively observed at temperatures below T=79 ± 3K. We report here realignment of our results with experiment by inclusion of a Hubbard parameter U and Hund's exchange J found via linear response methods — suggesting that the properties of Bi2CrAl3O9 are the product of inter-atomic and intra-atomic electron-electron correlations.
*Acknowledgment is made to the Donors of the American Chemical Society Petroleum Research Fund, for support of this research under contract 56764-UNI10.
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Presenters
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Jaylyn Umana
- Department of Physics, Farmingdale State College, Farmingdale, NY