| Literature DB >> 32572205 |
Lei Wang1,2, En-Min Shih2, Augusto Ghiotto2, Lede Xian3, Daniel A Rhodes4, Cheng Tan4,5, Martin Claassen6, Dante M Kennes3,7, Yusong Bai8, Bumho Kim4, Kenji Watanabe9, Takashi Taniguchi9, Xiaoyang Zhu8, James Hone4, Angel Rubio10,11,12, Abhay N Pasupathy13, Cory R Dean14.
Abstract
In narrow electron bands in which the Coulomb interaction energy becomes comparable to the bandwidth, interactions can drive new quantum phases. Such flat bands in twisted graphene-based systems result in correlated insulator, superconducting and topological states. Here we report evidence of low-energy flat bands in twisted bilayer WSe2, with signatures of collective phases observed over twist angles that range from 4 to 5.1°. At half-band filling, a correlated insulator appeared that is tunable with both twist angle and displacement field. At a 5.1° twist, zero-resistance pockets were observed on doping away from half filling at temperatures below 3 K, which indicates a possible transition to a superconducting state. The observation of tunable collective phases in a simple band, which hosts only two holes per unit cell at full filling, establishes twisted bilayer transition metal dichalcogenides as an ideal platform to study correlated physics in two dimensions on a triangular lattice.Entities:
Year: 2020 PMID: 32572205 DOI: 10.1038/s41563-020-0708-6
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841