Observation of first-order quantum phase transitions and ferromagnetism in twisted double bilayer graphene
arXiv:2306.13927 · doi:10.1103/PhysRevX.13.031015
Abstract
Twisted graphene multilayers are highly tunable flatband systems for developing new phases of matter. Thus far, while orbital ferromagnetism has been observed in valley polarized phases, the long-range orders of other correlated phases as well as the quantum phase transitions between different orders mostly remain unknown. Here, we report an observation of Coulomb interaction driven first-order quantum phase transitions and ferromagnetism in twisted double bilayer graphene (TDBG). At zero magnetic field, the transitions are revealed in a series of step-like abrupt resistance jumps with prominent hysteresis loop when either the displacement field (D) or the carrier density (n) is tuned across symmetry-breaking boundary near half filling, indicating a formation of ordered domains. It is worth noting that the good turnability and switching of these states gives a rise to a memory performance with a large on/off ratio. Moreover, when both spin and valley play the roles at finite magnetic field, we observe abundant first-order quantum phase transitions among normal metallic states from charge neutral point, orbital ferromagnetic states from quarter filling, and spin-polarized states from half filling. We interpret these first-order phase transitions in the picture of phase separations and spin domain percolations driven by multi-field tunable Coulomb interactions, in agreement with Lifshitz transition from Hartree-Fock calculations. The observed multi-filed tunable domain structure and its hysteresis resembles the characteristics of multiferroics, revealing intriguing magnetoelectric properties. Our result enriches the correlated phase diagram in TDBG for discovering novel exotic phases and quantum phase transitions, and it would benefit other twisted moiré systems as well.
References in corpus (13)
- Tunable Phase Boundaries and Ultra-Strong Coupling Superconductivity in Mirror Symmetric Magic-Angle Trilayer Graphene
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Flavour Hund's Coupling, Correlated Chern Gaps, and Diffusivity in Moiré Flat Bands
- Flatbands in twisted double bilayer graphene
- Band structure and topological property of twisted double bilayer graphenes
- Imaging Chern mosaic and Berry-curvature magnetism in magic-angle graphene
- Weak-field Hall Resistivity and Spin/Valley Flavor Symmetry Breaking in Magic-Angle Twisted Bilayer Graphene
- Isospin competitions and valley polarized correlated insulators in twisted double bilayer graphene
- Spontaneous time-reversal symmetry breaking in twisted double bilayer graphene
- Measuring local moiré lattice heterogeneity of twisted bilayer graphene
- Intrinsic spin Hall torque in a moire Chern magnet
- Spin polarized nematic order, quantum valley Hall states, and field tunable topological transitions in twisted multilayer graphene systems
- Temperature-linear Resistivity in Twisted Double Bilayer Graphene
Cited by in corpus (5)
- Symmetry-broken Chern insulators in twisted double bilayer graphene
- Interplay of Landau quantization and interminivalley scatterings in a weakly coupled moiré superlattice
- Ferroelectric-tunable quantum nonlinearity of chiral Bloch electrons in a moiré system
- General Many-Body Perturbation Framework for Moiré Systems
- Skyrmionic Transport and First Order Phase Transitions in Twisted Bilayer Graphene Quantum Hall Ferromagnet