Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10128386 | Optical Materials | 2018 | 5 Pages |
Abstract
The atomic structure and electronic properties of Mn3+ and Mn2+ ions substituted for the host Al at YAlO3 have been studied from the first principles. The 2Ã2Ã2 supercell adopted for the bulk crystal phase of Pbnm symmetry allows us to simulate substitutional point defect with concentration of about 3%. To perform ab initio modeling of Mn-doped YAlO3 we were using approach of hybrid exchange-correlation functional HSE within density functional theory. We predict a decrease of the MnO bond covalency in the doped crystal with respect to the AlO bond of ideal orthorhombic YAlO3. Relatively large displacement of Y and Al atoms nearest to the F0 -center inserted to stabilize the Mn2+ ion of Mn:YAlO3 (0.17â¯Ã
towards the defect) influences the YAlO3 electronic structure. This leads to the presence of energy levels in the band gap of Mn-doped YAlO3. The F-center attracts â¼0.54 e, while the rest electron density from the missing O2â is localized mostly on the closest Mn2+ dopant.
Related Topics
Physical Sciences and Engineering
Materials Science
Ceramics and Composites
Authors
Sergei Piskunov, Inta IsakoviÄa, Anatoli I. Popov,