Moiré disorder effect in twisted bilayer graphene
arXiv:2204.06177 · doi:10.1103/PhysRevB.105.245408
Abstract
We theoretically study the electronic structure of magic-angle twisted bilayer graphene with disordered moiré patterns. By using an extended continuum model incorporating non-uniform lattice distortion, we find that the local density of states of the flat band is hardly broadened, but splits into upper and lower subbands in most places. The spatial dependence of the splitting energy is almost exclusively determined by the local value of the effective vector potential induced by heterostrain, whereas the variation of local twist angle and local moiré period give relatively minor effects on the electronic structure. We explain the exclusive dependence on the local vector potential by a pseudo Landau level picture for the magic-angle flat band, and we obtain an analytic expression of the splitting energy as a function of the strain amplitude.
11 pages, 6 figures
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Cited by in corpus (14)
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- Giant atomic swirl in graphene bilayers with biaxial heterostrain
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- Observation of Shapiro Steps in the Charge Density Wave State Induced by Strain on a Piezoelectric Substrate