Structural classification of boron nitride twisted bilayers and ab
initio investigation of their stacking-dependent electronic structure
- URL: http://arxiv.org/abs/2206.05845v4
- Date: Thu, 17 Nov 2022 10:53:07 GMT
- Title: Structural classification of boron nitride twisted bilayers and ab
initio investigation of their stacking-dependent electronic structure
- Authors: Sylvain Latil, Hakim Amara, Lorenzo Sponza
- Abstract summary: We study the evolution of the band structure as a function of the twist angle for each of the five stacking sequences of boron nitride bilayers.
We show that the gap is indirect at any angle and in any stacking, and identify features that are conserved within the same stacking sequence irrespective of the angle of twist.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Since the discovery of superconductive twisted bilayer graphene which
initiated the field of twistronics, moir\'e systems have not ceased to exhibit
fascinating properties. We demonstrate that in boron nitride twisted bilayers,
for a given moir\'e periodicity, there are five different stackings which
preserve the monolayer hexagonal symmetry (i.e. the invariance upon rotations
of 120$^\circ$) and not only two as always discussed in literature. We
introduce some definitions and a nomenclature that identify unambiguously the
twist angle and the stacking sequence of any hexagonal bilayer with order-3
rotation symmetry. Moreover, we employ density functional theory to study the
evolution of the band structure as a function of the twist angle for each of
the five stacking sequences of boron nitride bilayers. We show that the gap is
indirect at any angle and in any stacking, and identify features that are
conserved within the same stacking sequence irrespective of the angle of twist.
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