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Computational analysis of apatite-type compounds for band gap engineering: DFT calculations and structure prediction using tetrahedral substitution
- Source :
- Rare Metals. 40:3694-3700
- Publication Year :
- 2021
- Publisher :
- Springer Science and Business Media LLC, 2021.
-
Abstract
- Mineral apatite compounds have attracted significant interest due to their chemical stability and adjustable hexagonal structure, which makes them suitable as new photovoltaic functional materials. The band gap of natural apatite is ~ 5.45 eV, and such a large value limits their applications in the field of catalysis and energy devices. In this research, we designed a method to narrow the band gap via the tetrahedral substitution effect in apatite-based compounds. The density functional theory (DFT) and experimental investigation of the electronic and optical properties revealed that the continuous incorporation of [MO4]4– tetrahedrons (M = Si, Ge, Sn, and Mn) into the crystal lattice can significantly reduce the band gap. In particular, this phenomenon was observed when the [MnO4]4– tetrahedron replaces the [PO4]4– tetrahedron because of the formation of a Mn 3d-derived conduction band minimum (CBM) and interacts with other elements, leading to band broadening and obvious reduction of the band gap. This approach allowed us to propose a novel scheme in the band gap engineering of apatite-based compounds toward an entire spectral range modification.
- Subjects :
- Materials science
Field (physics)
Band gap
Metals and Alloys
Crystal structure
Condensed Matter Physics
Apatite
Chemical physics
visual_art
Materials Chemistry
Tetrahedron
visual_art.visual_art_medium
Density functional theory
Substitution effect
Chemical stability
Physical and Theoretical Chemistry
Subjects
Details
- ISSN :
- 18677185 and 10010521
- Volume :
- 40
- Database :
- OpenAIRE
- Journal :
- Rare Metals
- Accession number :
- edsair.doi...........82a3d017fe3aa9ecee96551373636eb0
- Full Text :
- https://doi.org/10.1007/s12598-020-01690-0