Defect-induced band restructuring and length scales in twisted bilayer graphene
arXiv:2304.03018 · doi:10.1103/PhysRevB.108.125141
Abstract
We investigate the effects of single, multiple, and extended defects in the form of non-magnetic impurities and vacancies in twisted bilayer graphene (TBG) at and away from the magic angle, using a fully atomistic model and focusing on the behavior of the flat low-energy moiré bands. For strong impurities and vacancies in the region we find a complete removal of one of the four moiré bands, resulting in a significant depletion of the charge density in the regions even at extremely low defect concentrations. We find similar results for other defect locations, with the exception of the least coordinated sites in the region, where defects instead result in a peculiar band replacement process within the moiré bands. In the vacancy limit, this process yields a band structure misleadingly similar to the pristine case. Moreover, we show that triple point fermions (TPFs), which are the crossing of the Dirac point by a flat band, appearing for single, periodic, defects, are generally not preserved when adding extended or multiple defects, and thus likely not experimentally relevant. We further identify two universal length scales for defects, consisting of charge modulations on the atomic scale and on the moiré scale, illustrating the importance of both the atomic and moiré structures for understanding TBG. We show that our conclusions hold beyond the magic angle and for fully isolated defects. In summary, our results demonstrate that the normal state of TBG and its moiré flat bands are extremely sensitive to both the location and strength of non-magnetic impurities and vacancies, which should have significant implications for any emergent ordered state.
15 pages, 10 figures
References in corpus (17)
- Magnetism in Graphene Induced by Single-Atom Defects
- Flat Bands in Slightly Twisted Bilayer Graphene
- Graphene Bilayers with a Twist
- Disorder Induced Localized States in Graphene
- Two Dimensional Ir-Cluster Lattices on Moiré of Graphene with Ir(111)
- Lattice relaxation and energy band modulation in twisted bilayer graphenes
- The crucial role of atomic corrugation on the flat bands and energy gaps of twisted bilayer graphene at the "magic angle"
- Coulomb interaction, phonons, and superconductivity in twisted bilayer graphene
- Global Phase Diagram of the Normal State of Twisted Bilayer Graphene
- Cascades between light and heavy fermions in the normal state of magic angle twisted bilayer graphene
- Impurity-induced triple point fermions in twisted bilayer graphene
- Prediction of Ideal Topological Semimetals with Triply Degenerate Points in NaCuTe Family
- Effects of Lithium Intercalation in Twisted Bilayer Graphene
- Nematic superconductivity in magic-angle twisted bilayer graphene from atomistic modeling
- Point Defects in Twisted Bilayer Graphene: A Density Functional Theory Study
- Triple point semimetal and topological phase transitions in NaCuTe
- Selective Hydrogen Adsoprtion in Graphene Rotated Bilayers
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- Moire-enabled topological superconductivity in twisted bilayer graphene
- Correlated states in super-moiré materials with a kernel polynomial quantics tensor cross interpolation algorithm
- Probing moiré electronic structures through quasiparticle interference
- Buckling and flat bands in twisted bilayer graphene