Dielectric catastrophe at the Mott and Wigner transitions in a moiré superlattice
arXiv:2201.12510 · doi:10.1038/s41467-022-32037-1
Abstract
The metal-insulator transition (MIT) driven by electronic correlations is a fundamental and challenging problem in condensed-matter physics. Particularly, whether such a transition can be continuous remains open. The emergence of semiconducting moiré materials with continuously tunable bandwidth provides an ideal platform to study interaction-driven MITs. Although a bandwidth-tuned MIT at fixed full electron filling of the moiré superlattice has been reported recently, that at fractional filling, which involves translational symmetry breaking of the underlying superlattice, remains elusive. Here, we demonstrate bandwidth-tuned MITs in a MoSe2/WS2 moiré superlattice at both integer and fractional fillings using the exciton sensing technique. The bandwidth is controlled by an out-of-plane electric field. The dielectric response is probed optically with the 2s exciton in a remote WSe2 sensor layer. The exciton spectral weight is negligible for the metallic state, consistent with a large negative dielectric constant. It continuously vanishes when the transition is approached from the insulating side, corresponding to a diverging dielectric constant or a "dielectric catastrophe". Our results support continuous interaction-driven MITs in a two-dimensional triangular lattice and stimulate future explorations of exotic quantum phases, such as quantum spin liquids, in their vicinities.
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Cited by in corpus (16)
- Tunable bilayer Hubbard model physics in twisted WSe2
- Kinetic Magnetism in Triangular Moiré Materials
- Frustrated magnetic interactions in a Wigner-Mott insulator
- Exciton density waves in Coulomb-coupled dual moiré lattices
- Tunable spin and valley excitations of correlated insulators in -valley moiré bands
- Magnetism and Quantum Melting in Moiré-Material Wigner Crystals
- Nematic excitonic insulator in transition metal dichalcogenide moiré heterobilayers
- Field-induced hybridization of moiré excitons in MoSe/WS heterobilayers
- Metal-insulator transition in transition metal dichalcogenide heterobilayer: accurate treatment of interaction
- Lattice reconstruction in MoSe-WSe heterobilayers synthesized by chemical vapor deposition
- Long-lived Topological Flatband Excitons in Semiconductor Moiré Heterostructures: a Bosonic Kane-Mele Model Platform
- Polarization and charge-separation of moiré excitons in van der Waals heterostructures
- Metal to Wigner-Mott insulator transition in two-leg ladders
- Quantum melting of generalized electron crystal in twisted bilayer MoSe2
- Magnetic properties of moiré quantum dot arrays
- Impact of an electron Wigner crystal on exciton propagation