English

MATBG as Topological Heavy Fermion: I. Exact Mapping and Correlated Insulators

Strongly Correlated Electrons 2023-01-12 v2 Mesoscale and Nanoscale Physics

Abstract

Magic-angle (θ=1.05\theta=1.05^\circ) twisted bilayer graphene (MATBG) has shown two seemingly contradictory characters: the localization and quantum-dot-like behavior in STM experiments, and delocalization in transport experiments. We construct a model, which naturally captures the two aspects, from the Bistritzer-MacDonald (BM) model in a first principle spirit. A set of local flat-band orbitals (ff) centered at the AA-stacking regions are responsible to the localization. A set of extended topological conduction bands (cc), which are at small energetic separation from the local orbitals, are responsible to the delocalization and transport. The topological flat bands of the BM model appear as a result of the hybridization of ff- and cc-electrons. This model then provides a new perspective for the strong correlation physics, which is now described as strongly correlated ff-electrons coupled to nearly free topological semimetallic cc-electrons - we hence name our model as the topological heavy fermion model. Using this model, we obtain the U(4) and U(4)×\timesU(4) symmetries as well as the correlated insulator phases and their energies. Simple rules for the ground states and their Chern numbers are derived. Moreover, features such as the large dispersion of the charge ±1\pm1 excitations and the minima of the charge gap at the ΓM\Gamma_M point can now, for the first time, be understood both qualitatively and quantitatively in a simple physical picture. Our mapping opens the prospect of using heavy-fermion physics machinery to the superconducting physics of MATBG.

Keywords

Cite

@article{arxiv.2111.05865,
  title  = {MATBG as Topological Heavy Fermion: I. Exact Mapping and Correlated Insulators},
  author = {Zhi-Da Song and B. Andrei Bernevig},
  journal= {arXiv preprint arXiv:2111.05865},
  year   = {2023}
}

Comments

New references are added. Discussions on band geometry, relevant experiments, and more terms in the exchange interactions are added to the supplementary materials