Interlayer decoupling in twisted bilayers of -phosphorus and arsenic: a computational study
arXiv:1905.05951 · doi:10.1016/j.flatc.2019.100112
Abstract
We investigate magnetism and band structure engineering in Moiré superlattice of blue phosphorus (-P) and grey arsenene (-As) bilayers, using \textit{ab initio} calculations. The electronic states near the valence and conduction band edges have significant character in both the bilayers. Thus, twisting the layers significantly reduce the interlayer orbital overlap, leading to a decrease in the binding energy (up to ) and an increase in interlayer distance (up to ), compared to the most stable AA-stacking. This interlayer decoupling also results in a notable increase (up to 25-50\%) of the bandgap of twisted bilayers, with the valance band edge becoming relatively flat with van-Hove singularities in the density of states. Thus, hole doping induces a Stoner instability, leading to ferromagnetic ground state, which is more robust in Moiré superlattices, than that of AA-stacked -P and -As.
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