Band structure and topological property of twisted double bilayer graphenes
arXiv:1903.10467 · doi:10.1103/PhysRevB.99.235406
Abstract
We study the electronic band structure and the topological property of the twisted double bilayer graphene, or a pair of AB-stacked bilayer graphenes rotationally stacked on top of each other. We consider two different arrangements, AB-AB and AB-BA, which differ in the relative orientation. For each system, we calculate the energy band and the valley Chern number using the continuum Hamiltonian. We show that the AB-AB and the AB-BA have similar band structures, while the Chern numbers associated with the corresponding bands are completely different. In the absence of the perpendicular electric field, in particular, the AB-AB system is a trivial insulator when the Fermi energy is in a gap, while the AB-BA is a valley Hall insulator. Also, the lowest electron and hole bands of the AB-AB are entangled by the symmetry protected band touching points, while they are separated in the AB-BA. In both cases, the perpendicular electric field immediately opens an energy gap at the charge neutral point, where the electron branch becomes much narrower than the hole branch, due to the significant electron-hole asymmetry.
8 pages, 4 figures
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- Hierarchy of Ideal Flatbands in Chiral Twisted Multilayer Graphene Models
- Correlated electron-hole State in Twisted Double Bilayer Graphene
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- Nonlinear anomalous Hall effects probe topological phase-transitions in twisted double bilayer graphene
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- Floquet-Engineered Topological Flat Bands in Irradiated Twisted Bilayer Graphene
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- Effect of bilayer stacking on the atomic and electronic structure of twisted double bilayer graphene
- Tailoring the band structure of twisted double bilayer graphene with pressure
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- Floquet engineering of twisted double bilayer graphene
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- Valley-Current Splitter in Minimally Twisted Bilayer Graphene
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- Moiré Flat Bands of Twisted Few-layer Graphite
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- Topological phases in N-layer ABC-graphene boron-nitride moire superlattices
- Intrinsically-multilayer moiré heterostructures
- Observation of first-order quantum phase transitions and ferromagnetism in twisted double bilayer graphene
- Designing spin-textured flat bands in twisted graphene multilayers via helimagnet encapsulation
- Quantum Geometric Oscillations in Two-Dimensional Flat-Band Solids
- Progress on band structure engineering of twisted bilayer and two-dimensional moiré heterostructures
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