Correlated electronic phases in twisted bilayer transition metal dichalcogenides

被引:0
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作者
Lei Wang
En-Min Shih
Augusto Ghiotto
Lede Xian
Daniel A. Rhodes
Cheng Tan
Martin Claassen
Dante M. Kennes
Yusong Bai
Bumho Kim
Kenji Watanabe
Takashi Taniguchi
Xiaoyang Zhu
James Hone
Angel Rubio
Abhay N. Pasupathy
Cory R. Dean
机构
[1] Nanjing University,National Laboratory of Solid
[2] Columbia University,State Microstructures, School of Physics and Collaborative Innovation Center of Advanced Microstructures
[3] Max Planck Institute for the Structure and Dynamics of Matter,Department of Physics
[4] Columbia University,Department of Mechanical Engineering
[5] Columbia University,Department of Electrical Engineering
[6] Flatiron Institute,Center for Computational Quantum Physics
[7] Institut für Theorie der Statistischen Physik RWTH Aachen University and JARA-Fundamentals of Future Information Technology,Department of Chemistry
[8] Columbia University,Nano
[9] National Institute for Materials Science,Bio Spectroscopy Group, Departamento de Fisica de Materiales
[10] Universidad del País Vasco,undefined
来源
Nature Materials | 2020年 / 19卷
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摘要
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.
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页码:861 / 866
页数:5
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