TBG as Topological Heavy Fermion: II. Analytical approximations of the model parameters
arXiv:2303.03429 · doi:10.1063/10.0019421
Abstract
The recently-introduced Topological Heavy Fermion (THF) model [Phys. Rev. Lett. 129, 047601] of twisted bilayer graphene (TBG) aims to reconcile the quantum-dot-like electronic structure of the latter observed by scanning tunneling microscopy, with its electron delocalization seen in transport measurements. The THF model achieves this by coupling localized (heavy) fermions with anomalous conduction electrons. Originally, the parameters of the THF model were obtained numerically from the Bistritzer-Macdonald (BM) model of TBG [Phys. Rev. Lett. 129, 047601]. In this work, we derive analytical expressions for the THF model parameters as a function of the twist angle, the ratio between the tunneling amplitudes at the and regions (), and the screening length of the interaction potential. By numerically computing the THF model parameters across an extensive experimentally-relevant parameter space, we show that the resulting approximations are remarkably good, i.e. within the 30% relative error for almost the entire parameter space. At the single-particle level, the THF model accurately captures the energy spectrum of the BM model over a large phase space of angles and tunneling amplitude ratios. When interactions are included, we also show that the THF description of TBG is good around the magic angle for realistic values of the tunneling amplitude ratios (), for which the hybridization between the localized and conduction fermions is smaller than the onsite repulsion of the heavy fermions (i.e. ).
18+144 pages and 6+57 figures. Published version
References in corpus (17)
- Quantum Criticality in Heavy Fermion Metals
- Heavy Fermions and Quantum Phase Transitions
- Correlated Topological Insulators with Mixed Valence
- MATBG as Topological Heavy Fermion: I. Exact Mapping and Correlated Insulators
- Quantum critical behavior in magic-angle twisted bilayer graphene
- Band structure and insulating states driven by the Coulomb interaction in twisted bilayer graphene
- Imaging Chern mosaic and Berry-curvature magnetism in magic-angle graphene
- Structure of twisted and buckled bilayer graphene
- Competing phases of interacting electrons on triangular lattices in moiré heterostructures
- Cascades between light and heavy fermions in the normal state of magic angle twisted bilayer graphene
- Heavy fermion representation for twisted bilayer graphene systems
- Kondo Lattice Model of Magic-Angle Twisted-Bilayer Graphene: Hund's Rule, Local-Moment Fluctuations, and Low-Energy Effective Theory
- Momentum space quantum Monte Carlo on twisted bilayer Graphene
- Chiral Magic-Angle Twisted Bilayer Graphene in a Magnetic Field: Landau Level Correspondence, Exact Wavefunctions and Fractional Chern Insulators
- Symmetric Kondo Lattice States in Doped Strained Twisted Bilayer Graphene
- Spin magnetometry as a probe of stripe superconductivity in twisted bilayer graphene
- Lattice model for the Coulomb interacting chiral limit of the magic angle twisted bilayer graphene: symmetries, obstructions and excitations
Cited by in corpus (24)
- Dynamical correlations and order in magic-angle twisted bilayer graphene
- Electron-phonon coupling and competing Kekulé orders in twisted bilayer graphene
- Evolution from quantum anomalous Hall insulator to heavy-fermion semimetal in magic-angle twisted bilayer graphene
- Electron-K-Phonon Interaction In Twisted Bilayer Graphene
- Kondo effect and its destruction in hetero-bilayer transition metal dichalcogenides
- Topological Mixed Valence Model for Twisted Bilayer Graphene
- Moiré optical phonons dancing with heavy electrons in magic-angle twisted bilayer graphene
- Electron phonon coupling in the topological heavy fermion model of twisted bilayer graphene
- Topological flat bands, valley polarization, and interband superconductivity in magic-angle twisted bilayer graphene with proximitized spin-orbit couplings
- Topological heavy fermions in magnetic field
- Scaling theory of intrinsic Kondo and Hund's rule interactions in magic-angle twisted bilayer graphene
- Nonlocal Moments in the Chern Bands of Twisted Bilayer Graphene
- Topological Mixed Valence Model in Magic-Angle Twisted Bilayer Graphene
- Textured Exciton Insulators
- Vacancy-induced tunable Kondo effect in twisted bilayer graphene
- Oscillate and Renormalize: Fast Phonons Reshape the Kondo Effect in Flat Band Systems
- Momentum-resolved spectroscopy of superconductivity with the quantum twisting microscope
- Ferromagnetism vs. Antiferromagnetism in Narrow-Band Systems: Competition Between Quantum Geometry and Band Dispersion
- Mean-field Modelling of Moiré Materials: A User's Guide with Selected Applications to Twisted Bilayer Graphene
- Chern-Selective multi-valley Flat Bands in Twisted Mono-Bilayer and Mono-Trilayer MoTe
- Perturbative renormalization group approach to magic-angle twisted bilayer graphene using topological heavy fermion model
- Particle-hole Symmetric Slave Boson Method for the Mixed Valence Problem
- Robustness of real-space topology in moiré systems
- Particle-hole asymmetric phases in doped twisted bilayer graphene