Thermodynamic characteristic for correlated flat-band system with quantum anomalous Hall ground state
arXiv:2207.07133 · doi:10.1103/PhysRevLett.130.016401
Abstract
While the ground state phase diagram of the correlated flat-band systems have been intensively investigated, the dynamic and thermodynamic properties of such lattice models are less explored, but it is the latter which is most relevant to the experimental probes (transport, quantum capacitance and spectroscopy) of the quantum moiré materials such as twisted bilayer graphene and transition metal dichalcogenides. Here we show, by means of momentum-space quantum Monte Carlo and exact diagonalization, there exists a unique thermodynamic characteristic for the correlated flat-band models with interaction-driven quantum anomalous Hall (QAH) ground state, namely, the transition from the QAH insulator to the metallic state takes place at a much lower temperature compared with the zero-temperature single-particle gap generated by the long-range Coulomb interaction. Such low transition temperature comes from the proliferation of excitonic particle-hole excitations, which "quantum teleport" the electrons across the gap between different topological bands to restore the broken time-reversal symmetry and give rise to a pronounced enhancement in the charge compressibility. Future experiments, to verify such generic thermodynamic characteristics, are proposed.
5 pages, 3 figures with supplemental material
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Cited by in corpus (16)
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- Dynamical properties of quantum many-body systems with long range interactions
- "Quantum Geometric Nesting" and Solvable Model Flat-Band Systems
- Evolution from quantum anomalous Hall insulator to heavy-fermion semimetal in magic-angle twisted bilayer graphene
- An integral algorithm of exponential observables for interacting fermions in quantum Monte Carlo simulation
- Angle-Tuned Gross-Neveu Quantum Criticality in Twisted Bilayer Graphene: A Quantum Monte Carlo Study
- From Fractional Quantum Anomalous Hall Smectics to Polar Smectic Metals: Nontrivial Interplay Between Electronic Liquid Crystal Order and Topological Order in Correlated Topological Flat Bands
- Atomistic theory of moiré Hofstadter's butterfly in magic-angle graphene
- Spectra of Magnetoroton and Chiral Graviton Modes of Fractional Chern Insulator
- Defining a universal sign to strictly probe a phase transition
- Ubiquitous nematic Dirac semimetal emerging from interacting quadratic band touching system
- Universal collective Larmor-Silin mode emerging in magnetized correlated Dirac fermions
- General Many-Body Perturbation Framework for Moiré Systems