First principles calculations of the Bi<sub>2</sub>Te<sub>3</sub> (0001) surface: effect of surface Relaxation
ORAL
Abstract
The surface (0001) of the Bi2Te3 composite, which is a topological insulator, was investigated using first principles calculations based on Density Functional Theory (DFT). This study examined the effect of surface relaxation on the electronic states of the material, as well as spin-orbit coupling. The results indicate that the allowed energy states crossing at the Fermi level originate from the most exposed Bi2Te3 monolayer of the surface, while the innermost layers retain their semiconducting character. It was demonstrated that introducing spin-orbit coupling is necessary to replicate the reported states of Bi2Te3. Additionally, structural relaxation plays a crucial role in the surface states and must be taken into account.
*We thank DGAPA-UNAM IG101124, IA100624 and IN101523. Calculations were performed in the DGCTIC-UNAM Supercomputing Center, projects LANCAD-UNAM-DGTIC-150, LANCAD-UNAM-DGTIC-051, LANCAD-UNAM-DGTIC-390, and LANCAD-UNAM-DGTIC-422
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Presenters
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Edgar Sanchez
- Universidad Autonoma de Nuevo Leon