Ab initio simulation of : A high symmetry ground state phase with application to interface calculation
arXiv:1812.04859 · doi:10.1002/andp.201800524
Abstract
We suggest a tetragonal phase (-phase) as the ground state of at zero temperature, which is a high symmetry version of the triclinic -phase predicted by Yang and Kawazoe. Our calculation shows that -phase will automatically be transformed into the -phase during structural relaxation. Phonon dispersion confirms that the -phase is dynamically stable, while the high temperature -phase , which also has the symmetry, is unstable at zero temperature. A thorough energy comparison of the , , , , , , , , , and phases of is carried out. The GGA-1/2 method is applied in calculating the electronic structure of various phases, where the -phase demonstrates a 4.24 eV indirect band gap, close to experimental value. The high symmetry tetragonal phase together with computationally efficient GGA-1/2 method greatly facilitate the simulation of -based devices. As an example, we have explicitly shown the Ohmic contact nature between metal Ta and by calculating an interface model of Ta and -, using GGA-1/2.
27 pages, 8 figures
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