Non-local interactions in moiré Hubbard systems
arXiv:2108.03313 · doi:10.1103/PhysRevLett.128.217202
Abstract
Moiré materials formed in two-dimensional semiconductor heterobilayers are quantum simulators of Hubbard-like physics with unprecedented electron-density and interaction-strength tunability. Compared to atomic scale Hubbard-like systems, electrons or holes in moiré materials are less strongly attracted to their effective lattice sites because these are defined by finite-depth potential extrema. As a consequence, non-local interaction terms like interaction-assisted hopping and intersite-exchange are more relevant. We theoretically demonstrate the possibility of tuning the strength of these coupling constants to favor unusual states of matter, including spin liquids, insulating ferromagnets, and superconductors.
10 pages, 7 figures
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- Magnetism and Quantum Melting in Moiré-Material Wigner Crystals
- Twistronics of Janus transition metal dichalcogenide bilayers
- Chiral Pseudo Spin Liquids in Moire Heterostructures
- Electrically tuned topology and magnetism in twisted bilayer MoTe at
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- Bridging the small and large in twisted transition metal dicalcogenide homobilayers: a tight binding model capturing orbital interference and topology across a wide range of twist angles
- Kagome chiral spin liquid in transition metal dichalcogenide moiré bilayers
- Staggered Pseudo Magnetic Field in Twisted Transition Metal Dichalcogenides: Physical Origin and Experimental Consequences
- Kondo effect and its destruction in hetero-bilayer transition metal dichalcogenides
- Probing magnetism in moiré heterostructures with quantum twisting microscopes
- Topological Kondo semimetal and insulator in AB-stacked heterobilayer transition metal dichalcogenides
- Pseudogap metal and magnetization plateau from doping moiré Mott insulator
- Spin-polarons and ferromagnetism in doped dilute Wigner-Mott insulators
- Extended Hubbard model describing small multi-dot arrays in bilayer graphene
- Layer Pseudospin Magnetism in Transition-Metal-Dichalcogenide Double-Moirés
- Site-selective insulating phase in twisted bilayer Hubbard model
- Particle-hole asymmetric ferromagnetism and spin textures in the triangular Hubbard-Hofstadter model
- Exciton interacting with a moiré lattice: Polarons, strings, and optical probing of spin correlations
- Band structure and band topology in twisted homotrilayer transition metal dichalcogenides
- Light driven magnetic transitions in transition metal dichalcogenide heterobilayers
- Kanamori-Moiré-Hubbard model for transition metal dichalcogenide homobilayers
- Itinerant ferromagnetism in transition metal dichalcogenides moiré superlattices
- Twistronics and moiré superlattice physics in 2D transition metal dichalcogenides
- Probing a quantum spin liquid with equilibrium and nonequilibrium hole dynamics
- Magnetic properties of moiré quantum dot arrays
- Origin and stability of generalized Wigner crystallinity in triangular moiré systems
- Topological Kondo semimetals emulated in hetero-bilayer transition metal dichalcogenides
- Spin-charge bound states and emerging fermions in a quantum spin liquid
- Purely electronic model for exciton-polaron formation in moiré heterostructures
- Geometry-Driven Moiré Engineering in Twisted Bilayers of High-Pseudospin Fermions
- Study of the triangular-lattice Hubbard model with constrained-path quantum Monte Carlo
- Non-local interactions and supersolidity of moiré excitons
- Higher Chern bands in helical homotrilayer transition metal dichalcogenides
- Effective long-range attraction of moiré excitons under the influence of atomic reconstructions and anisotropic screening
- Competing instabilities of the extended Hubbard model on the triangular lattice: Truncated-unity functional renormalization group and application to moiré materials