We have investigated the group 14 nitrides (M3N4) in the spinel phase (γ-M3N4 with M= C, Si, Ge and Sn) and β phase (β-M3N4 with M= Si, Ge and Sn) using density functional theory with the local density approximation and the GW approximation. The Kohn-Sham energies of these systems have been first calculated within the framework of full-potential linearized augmented plane waves and then corrected using single-shot G0W0 calculations, which we have implemented in the modified version of the Elk full-potential LAPW code. Direct band gaps at the Γ point have been found for spinel-type nitrides γ-M3N4 with M= Si, Ge and Sn. The corresponding GW-corrected band gaps agree with experiment. We have also found that the GW calculations with and without the plasmon-pole approximation give very similar results, even when the system contains semi-core d electrons. These spinel-type nitrides are novel materials for potential optoelectronic applications because of their direct and tunable band gaps.
@article{arxiv.1404.4656,
title = {All-Electron GW Quasiparticle Band Structures of Group 14 Nitride Compounds},
author = {Iek-Heng Chu and Anton Kozhenikov and Thomas C. Schulthess and Hai-Ping Cheng},
journal= {arXiv preprint arXiv:1404.4656},
year = {2014}
}