Topological and stacked flat bands in bilayer graphene with a superlattice potential
arXiv:2206.13501 · doi:10.1103/PhysRevLett.130.196201
Abstract
We show that bilayer graphene in the presence of a 2D superlattice potential provides a highly tunable setup that can realize a variety of flat band phenomena. We focus on two regimes: (i) topological flat bands with non-zero Chern numbers, C, including bands with higher Chern numbers |C| > 1; and (ii) an unprecedented phase consisting of a stack of nearly perfect flat bands with C = 0. For realistic values of the potential and superlattice periodicity, this stack can span nearly 100 meV, encompassing nearly all of the low-energy spectrum. We further show that in the topological regime, the topological flat band has a favorable band geometry for realizing a fractional Chern insulator (FCI) and use exact diagonalization to show that the FCI is in fact the ground state at 1/3 filling. Our results provide a realistic guide for future experiments to realize a new platform for flat band phenomena.
14 pages including supplementary materials. Published version
References in corpus (41)
- Biased bilayer graphene: semiconductor with a gap tunable by electric field effect
- The Valley Hall Effect in MoS2 Transistors
- Entanglement Spectrum as a Generalization of Entanglement Entropy: Identification of Topological Order in Non-Abelian Fractional Quantum Hall Effect States
- Asymmetry gap in the electronic band structure of bilayer graphene
- Valley Dependent Optoelectronics from Inversion Symmetry Breaking
- Flat Bands in Slightly Twisted Bilayer Graphene
- Tunable Phase Boundaries and Ultra-Strong Coupling Superconductivity in Mirror Symmetric Magic-Angle Trilayer Graphene
- Detecting Topological Currents in Graphene Superlattices
- Anisotropic behaviors of massless Dirac fermions in graphene under periodic potential
- Abundance of correlated insulating states at fractional fillings of WSe/WS moiré superlattices
- Moiré heterostructures as a condensed matter quantum simulator
- Ab Initio Theory of Gate Induced Gaps in Graphene Bilayers
- Fractional Chern insulators in magic-angle twisted bilayer graphene
- Electric field tunable unconventional superconductivity in alternating twist magic-angle trilayer graphene
- Strongly Correlated Chern Insulators in Magic-Angle Twisted Bilayer Graphene
- New Generation of Massless Dirac Fermions in Graphene under External Periodic Potentials
- Magic in twisted transition metal dichalcogenide bilayers
- Exact Landau Level Description of Geometry and Interaction in a Flatband
- Fractional Chern Insulators in Topological Flat bands with Higher Chern Number
- Topological flat band models with arbitrary Chern numbers
- Valley-Hall Kink and Edge States in Multilayer Graphene
- Spontaneous fractional Chern insulators in transition metal dichalcogenides Moire superlattices
- Fractional Quantum Hall Effect in Topological Flat Bands with Chern Number Two
- High-temperature topological superconductivity in twisted double layer copper oxides
- Making Massless Dirac Fermions from Patterned Two-Dimensional Electron Gases
- Bloch Model Wavefunctions and Pseudopotentials for All Fractional Chern Insulators
- Hartree-Fock study of the moiré Hubbard model for twisted bilayer transition metal dichalcogenides
- Interplay of Fractional Chern Insulator and Charge-Density-Wave Phases in Twisted Bilayer Graphene
- Hierarchy of Ideal Flatbands in Chiral Twisted Multilayer Graphene Models
- Quantum Metric Induced Phases in Moiré Materials
- A moiré superlattice on the surface of a topological insulator
- Stability of fractional Chern insulators in the effective continuum limit of Harper-Hofstadter bands with Chern number
- Dynamical Mean Field Theory of Moiré Bilayer Transition Metal Dichalcogenides: Phase Diagram, Resistivity, and Quantum Criticality
- Magic angles and correlations in twisted nodal superconductors
- Tunable Stripe Order and Weak Superconductivity in the Moiré Hubbard Model
- Multilayer graphene with a superlattice potential
- Designer Meron Lattice on the Surface of a Topological Insulator
- Magic angle conditions for twisted 3D topological insulators
- Staggered Pseudo Magnetic Field in Twisted Transition Metal Dichalcogenides: Physical Origin and Experimental Consequences
- Moiré Engineering of Spin-Orbit Coupling in Twisted Platinum Diselenide
- Chiral excitonics in monolayer semiconductors on patterned dielectric
Cited by in corpus (46)
- Flat bands, strange metals, and the Kondo effect
- Pressure--enhanced fractional Chern insulators in moiré transition metal dichalcogenides along a magic line
- Non-Abelian fractionalization in topological minibands
- Engineering high quality graphene superlattices via ion milled ultra-thin etching masks
- Topological exact flat bands in two dimensional materials under periodic strain
- Parent Berry curvature and the ideal anomalous Hall crystal
- Topological flat bands in rhombohedral tetralayer and multilayer graphene on hexagonal boron nitride moire superlattices
- Band structure engineering using a moiré polar substrate
- Multilayer graphene with a superlattice potential
- Variational Mapping of Chern Bands to Landau Levels: Application to Fractional Chern Insulators in Twisted MoTe
- Gate-tunable topological phases in superlattice modulated bilayer graphene
- Theory of polarization textures in crystal supercells
- Nearly flat Chern band in periodically strained monolayer and bilayer graphene
- Engineering band structures of two-dimensional materials with remote moire ferroelectricity
- Quantum Geometry and Stabilization of Fractional Chern Insulators Far from the Ideal Limit
- Chiral model of twisted bilayer graphene realized in a monolayer
- Signature of Correlated Insulator in Electric Field Controlled Superlattice
- Engineering the in-plane anomalous Hall effect in CdAs thin films
- Contrasting twisted bilayer graphene and transition metal dichalcogenides for fractional Chern insulators: an emergent gauge picture
- Designing topology and fractionalization in narrow gap semiconductor films via electrostatic engineering
- Enhanced Kohn-Luttinger topological superconductivity in bands with nontrivial geometry
- Synergistic correlated states and nontrivial topology in coupled graphene-insulator heterostructures
- Displacement field-controlled fractional Chern insulators and charge density waves in a graphene/hBN moiré superlattice
- Charge Conservation Beyond Uniformity: Spatially Inhomogeneous Electromagnetic Response in Periodic Solids
- Efficient prediction of superlattice and anomalous miniband topology from quantum geometry
- Intrinsically-multilayer moiré heterostructures
- Nonlinear optical responses and quantum geometry in rhombohedral trilayer graphene
- Roses in the Nonperturbative Current Response of Artificial Crystals
- Inducing topological flat bands in bilayer graphene with electric and magnetic superlattices
- Piezoelectric Electrostatic Superlattices in Monolayer MoS
- Reentrant topological phases and spin density wave induced by 1D moiré potentials
- Designing Band Structures by Patterned Dielectric Superlattices
- Understanding Disorder in Monolayer Graphene Devices with Gate-Defined Superlattices
- Artificial moiré engineering for an ideal BHZ model
- A critical nematic phase with pseudogap-like behavior in twisted bilayers
- Nanoscale ferroelectric programming of van der Waals heterostructures
- Quantum-geometric dipole: a topological boost to flavor ferromagnetism in flat bands
- Four-band effective square lattice model for Bernal-stacked bilayer graphene
- Various electronic crystal phases in rhombohedral graphene multilayers
- Hexagonal boron nitride/bilayer graphene moiré superlattices in the Dirac-material family: energy-band engineering and carrier doping by dual gating
- Lithography defined semiconductor moires with anomalous in-gap quantum Hall states
- Giant Shift Current in Electrically-Tunable Superlattice Bilayer Graphene
- Artificial electrostatic crystals: a new platform for creating correlated quantum states
- Efficient prediction of topological superlattice bands with spin-orbit coupling
- Magnetic Bloch bands and Weiss oscillations in Dirac mass superlattices
- Designing Flat Bands and Pseudo-Landau Levels in GaAs with Patterned Gates