Emergent geometric frustration and flat band in moiré bilayer graphene
arXiv:1803.07060 · doi:10.1103/PhysRevLett.123.186402
Abstract
So far the physics of moiré graphene bilayers at large, incommensurate rotation angles has been considered uninteresting. It has been held that the interlayer coupling in such structures is weak and the system can be thought of as a pair of decoupled single graphene sheets to a good approximation. Here, we demonstrate that for large rotation angles near commensurate ones, the interlayer coupling, far from being weak, is able to completely localize electrons to within a large scale, geometrically frustrated network of topologically protected modes. The emergent geometric frustration of the system gives rise to completely flat bands, with strong correlation physics as a result. All of this arises although in the lattice structure no large scale pattern appears to the unguided eye. Sufficiently close to commensuration the low-energy physics of this remarkable system has an exact analytical solution.
References in corpus (9)
- Magic-angle graphene superlattices: a new platform for unconventional superconductivity
- Correlated Insulator Behaviour at Half-Filling in Magic Angle Graphene Superlattices
- Flat Bands in Slightly Twisted Bilayer Graphene
- Single Layer Behavior and Its Breakdown in Twisted Graphene Layers
- Continuum Model of the Twisted Bilayer
- Topological confinement in bilayer graphene
- Numerical studies of confined states in rotated bilayers of graphene
- Topologically Protected Helical States in Minimally Twisted Bilayer Graphene
- Transport through a network of topological states in twisted bilayer graphene
Cited by in corpus (27)
- Doped Twisted Bilayer Graphene near Magic Angles: Proximity to Wigner Crystallization not Mott Insulation
- Magic-angle Bilayer Phononic Graphene
- Bilayer Photonic Graphene
- Magic-angle semimetals
- Aharonov-Bohm Oscillations in Minimally Twisted Bilayer Graphene
- Chiral zigzag modes and flatbands in network models of twisted bilayer graphene
- Twistronics in graphene-based van der Waals structures
- Reduction of the Twisted Bilayer Graphene Chiral Hamiltonian into a matrix operator and physical origin of flat-bands at magic angles
- Plasmonic Dirac Cone in Twisted Bilayer Graphene
- 3/2 magic-angle quantization rule of flat bands in twisted bilayer graphene and relationship with the Quantum Hall effect
- Why the first magic-angle is different from others in twisted graphene bilayers: interlayer currents, kinetic and confinement energy and wavefunction localization
- Correlated states of a triangular net of coupled quantum wires: Implications for the phase diagram of marginally twisted bilayer graphene
- Electric Field Tunable Band Gap in Commensurate Twisted Bilayer Graphene
- Surfactant-Mediated Epitaxial Growth of Single-Layer Graphene in an Unconventional Orientation on SiC
- Enhanced Amplitude for Superconductivity due to Spectrum-wide Wave Function Criticality in Quasiperiodic and Power-law Random Hopping Models
- Network model for periodically strained graphene
- Terahertz Circular Dichroism in Commensurate Twisted Bilayer Graphene
- Quantum Valley and Sub-valley Hall Effect in the Large Angle Twisted Bilayer Graphene
- Localized states coupled to a network of chiral modes in minimally twisted bilayer graphene
- Emergence of flat bands in the quasicrystal limit of boron nitride twisted bilayers
- Incommensurability-induced sub-ballistic narrow-band-states in twisted bilayer graphene
- Squeezing Quantum States in Three-Dimensional Twisted Crystals
- Chiral electronic network within skyrmionic lattice on topological insulator surfaces
- Twisted bilayer graphene as a terahertz plasmonic crystal
- Network model and four-terminal transport in minimally twisted bilayer graphene
- Electronic Reconstruction at the Quasicrystal-Moiré Crossover in Twisted Bilayer Graphene
- Effects of spin-orbit coupling in a valley chiral kagomé network