Magnetic phases from competing Hubbard and extended Coulomb interactions in twisted bilayer graphene
arXiv:2103.09015 · doi:10.1103/PhysRevB.104.115110
Abstract
We implement a self-consistent Hartree-Fock approximation based on a microscopic model in real space, which allows us to consider the interplay between the Hubbard and the extended Coulomb interaction in twisted bilayer graphene at the magic angle. These two interactions tend to favor different symmetry breaking patterns, having therefore complementary roles in the regimes where one or the other dominates. We show that, for sufficiently large values of the on-site Hubbard repulsion, magic angle graphene has an antiferromagnetic ground state at the charge neutrality point, while at half-filling of the lowest valence band the state becomes fully spin-polarized. In general, a suitable screening of the extended Coulomb interaction is required to observe the magnetic state in either case, as otherwise the instabilities take place in the charge sector, preferentially in the form of time-reversal, chiral or valley symmetry breaking.
5 pages, 3 figures
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- Short vs. long range exchange interactions in twisted bilayer graphene
- Strongly Interacting Phases in Twisted Bilayer Graphene at the Magic Angle
- Nonflat bands and chiral symmetry in magic-angle twisted bilayer graphene
- Mean-field Modelling of Moiré Materials: A User's Guide with Selected Applications to Twisted Bilayer Graphene
- Review of the tight-binding method applicable to the properties of moiré superlattices
- Anomalous enhancement of large-momentum scattering by electron-electron interaction in moiré superlattices
- Flat-band projected versus fully atomistic twisted bilayer graphene
- Magnetic Ordering in Moiré Graphene Multilayers from a Continuum Hartree+U Approach
- Magnetism of magic-angle twisted bilayer graphene