Dirac cone spectroscopy of strongly correlated phases in twisted trilayer graphene
arXiv:2204.07244 · doi:10.1038/s41563-022-01428-6
Abstract
Mirror-symmetric magic-angle twisted trilayer graphene (MATTG) hosts flat electronic bands close to zero energy, and has been recently shown to exhibit abundant correlated quantum phases with flexible electrical tunability. However studying these phases proved challenging as these are obscured by intertwined Dirac bands. In this work, we demonstrate a novel spectroscopy technique, that allows to quantify the energy gaps and Chern numbers of the correlated states in MATTG by driving band crossings between Dirac cone Landau levels and the energy gaps in the flat bands. We uncover hard correlated gaps with Chern numbers of C = 0 at integer moire unit cell fillings of nu = 2 and 3 and reveal novel charge density wave states originating from van Hove singularities at fractional fillings of nu = 5/3 and 11/3. In addition, we demonstrate the existence of displacement field driven first-order phase transitions at charge neutrality and half fillings of the moire unit cell nu = 2, which is consistent with a theoretical strong-coupling analysis, implying the breaking of the C2T symmetry. Overall these properties establish the diverse and electrically tunable phase diagram of MATTG and provide an avenue for investigating electronic quantum phases and strong correlations in multiple-band moire systems.
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- Electron-phonon coupling and competing Kekulé orders in twisted bilayer graphene
- Nonlocal Moments in the Chern Bands of Twisted Bilayer Graphene
- Kekulé spirals and charge transfer cascades in twisted symmetric trilayer graphene
- Orbitally controlled quantum Hall states in decoupled two-bilayer graphene sheets
- Imaging Coulomb interactions and migrating Dirac cones in twisted graphene by local quantum oscillations
- Electronic structure of biased alternating-twist multilayer graphene
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- Dominant 1/3-filling Correlated Insulator States and Orbital Geometric Frustration in Twisted Bilayer Graphene
- RKKY interaction in one-dimensional flat-band lattices
- Double-dome Unconventional Superconductivity in Twisted Trilayer Graphene
- Chern-Textured Exciton Insulators with Valley Spiral Order in Moiré Materials
- Featuring nuanced electronic band structure in gapped multilayer graphene
- Topological phase diagram of twisted bilayer graphene as a function of the twist angle
- Strong Correlations and Superconductivity in the Supermoiré Lattice
- Heavy fermion phase diagram in magic-angle twisted trilayer graphene
- Three-dimensional flat bands and possible interlayer triplet pairing superconductivity in the alternating twisted NbSe moiré bulk
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