4.3 Article

Flat bands, electron interactions, and magnetic order in magic-angle mono-trilayer graphene

Journal

PHYSICAL REVIEW MATERIALS
Volume 5, Issue 8, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevMaterials.5.084008

Keywords

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Funding

  1. Centre for Doctoral Training on Theory and Simulation of Materials at Imperial College London - EPSRC [EP/L015579/1]
  2. EPSRC [EP/S025324/1]
  3. Thomas Young Centre [TYC-101]
  4. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [RTG 1995, SPP 2244 2DMP, EXC2004/1 -390534769]
  5. Max Planck-New York City Center for Non-Equilibrium Quantum Phenomena
  6. RWTH Aachen University [rwth0496, rwth0589]
  7. EPSRC [EP/S025324/1] Funding Source: UKRI

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The study reveals that twisted graphene monolayers on trilayer graphene can form flat bands at specific twist angles, but the stacking configuration of graphene layers influences the properties of electronic band structure. By investigating the effect of electron-electron interactions, the analysis shows that applying a perpendicular electric field facilitates the occurrence of magnetic ordering in the AtABC system.
Starting with twisted bilayer graphene, graphene-based moire materials have recently been established as a new platform for studying strong electron correlations. In this paper, we study twisted graphene monolayers on trilayer graphene and demonstrate that this system can host flat bands when the twist angle is close to the magic angle of 1.16 degrees. When monolayer graphene is twisted on ABA trilayer graphene, the flat bands are not isolated, but are intersected by a Dirac cone with a large Fermi velocity. In contrast, graphene twisted on ABC trilayer graphene (denoted AtABC) exhibits a gap between flat and remote bands. Since ABC trilayer graphene and twisted bilayer graphene are known to host broken-symmetry phases, we further investigate the ostensibly similar magic-angle AtABC system. We study the effect of electron-electron interactions in AtABC using both Hartree theory and an atomic Hubbard theory to calculate the magnetic phase diagram as a function of doping, twist angle, and perpendicular electric field. Our analysis reveals a rich variety of magnetic orderings, including ferromagnetism and ferrimagnetism, and demonstrates that a perpendicular electric field makes AtABC more susceptible to magnetic ordering.

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