Electrical band flattening, valley flux, and superconductivity in twisted trilayer graphene
arXiv:2005.02169 · doi:10.1103/PhysRevResearch.2.033357
Abstract
Twisted graphene multilayers have demonstrated to yield a versatile playground to engineer controllable electronic states. Here, by combining first-principles calculations and low-energy models, we demonstrate that twisted graphene trilayers provide a tunable system where van Hove singularities can be controlled electrically. In particular, it is shown that besides the band flattening, bulk valley currents appear, which can be quenched by local chemical dopants. We finally show that in the presence of electronic interactions, a non-uniform superfluid density emerges, whose non-uniformity gives rise to spectroscopic signatures in dispersive higher energy bands. Our results put forward twisted trilayers as a tunable van der Waals heterostructure displaying electrically controllable flat bands and bulk valley currents.
11 pages, 9 figures
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Cited by in corpus (39)
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- Electric field tunable unconventional superconductivity in alternating twist magic-angle trilayer graphene
- Emulating heavy fermions in twisted trilayer graphene
- Unconventional Superconductivity in Magic-Angle Twisted Trilayer Graphene
- Mirror Symmetry Breaking and Lateral Stacking Shifts in Twisted Trilayer Graphene
- Higher-order van Hove singularity in magic-angle twisted trilayer graphene
- Supermoiré low-energy effective theory of twisted trilayer graphene
- TSTG I: Single-Particle and Many-Body Hamiltonians and Hidden Non-local Symmetries of Trilayer Moiré Systems with and without Displacement Field
- Magic-Angle Twisted Symmetric Trilayer Graphene as Topological Heavy Fermion Problem
- Multi-scale lattice relaxation in general twisted trilayer graphenes
- Topological flat bands in rhombohedral tetralayer and multilayer graphene on hexagonal boron nitride moire superlattices
- Lattice relaxation, mirror symmetry and magnetic field effects on ultraflat bands in twisted trilayer graphene
- TSTG II: Projected Hartree-Fock Study of Twisted Symmetric Trilayer Graphene
- Stacking and gate tunable topological flat bands, gaps and anisotropic strip patterns in twisted trilayer graphene
- Electronic properties of twisted bilayer graphene suspended and encapsulated with hexagonal boron nitride
- Commensurate and incommensurate double moiré interference in twisted trilayer graphene
- Correlation-induced valley topology in buckled graphene superlattices
- Moire Band Structures of the Double twisted Few Layer Graphene
- Flat bands, electron interactions and magnetic order in magic-angle mono-trilayer graphene
- Chiral Decomposition of Twisted Graphene Multilayers with Arbitrary Stacking
- Nearly flat bands in twisted triple bilayer graphene
- Kekulé spirals and charge transfer cascades in twisted symmetric trilayer graphene
- Quasiperiodic criticality and spin-triplet superconductivity in superconductor-antiferromagnet moire patterns
- Ising superconductivity induced from spin-selective valley symmetry breaking in twisted trilayer graphene
- Doping fingerprints of spin and lattice fluctuations in moiré superlattice systems
- Electronic structure of biased alternating-twist multilayer graphene
- Impurity-induced excitations in a topological two-dimensional ferromagnet/superconductor van der Waals moiré heterostructure
- Tunable moire spinons in magnetically encapsulated twisted van der Waals quantum spin-liquids
- Moiré Band Engineering in Twisted Trilayer WSe2
- Electron-beam induced emergence of mesoscopic ordering in layered MnPS
- Short vs. long range exchange interactions in twisted bilayer graphene
- Tunneling in an anisotropic cubic Dirac semi-metal
- Elastic Screening of Pseudogauge Fields in Graphene
- Floquet Hofstadter butterfly in trilayer graphene with a twisted top layer
- Nonflat bands and chiral symmetry in magic-angle twisted bilayer graphene
- Review of the tight-binding method applicable to the properties of moiré superlattices
- Magic angle and plasmon mode engineering in twisted trilayer graphene with pressure
- Flat-band projected versus fully atomistic twisted bilayer graphene
- Sliding-dependent electronic structures of alternating-twist tetralayer graphene