Correlated Hofstadter spectrum and flavour phase diagram in magic-angle twisted bilayer graphene

被引:0
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作者
Jiachen Yu
Benjamin A. Foutty
Zhaoyu Han
Mark E. Barber
Yoni Schattner
Kenji Watanabe
Takashi Taniguchi
Philip Phillips
Zhi-Xun Shen
Steven A. Kivelson
Benjamin E. Feldman
机构
[1] Stanford University,Department of Applied Physics
[2] Stanford University,Geballe Laboratory of Advanced Materials
[3] Stanford University,Department of Physics
[4] SLAC National Accelerator Laboratory,Stanford Institute for Materials and Energy Sciences
[5] National Institute for Material Science,Research Center for Functional Materials
[6] National Institute for Material Science,International Center for Materials Nanoarchitectonics
[7] University of Illinois at Urbana-Champaign,Department of Physics and Institute for Condensed Matter Theory
来源
Nature Physics | 2022年 / 18卷
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摘要
In magic-angle twisted bilayer graphene, the moiré superlattice potential gives rise to narrow electronic bands that support a multitude of many-body quantum phases. Further richness arises in the presence of a perpendicular magnetic field, where the interplay between moiré and magnetic length scales leads to fractal Hofstadter subbands. In this strongly correlated Hofstadter platform, multiple experiments have identified gapped topological and correlated states, but little is known about the phase transitions between them in the intervening compressible regimes. Here we simultaneously unveil sequences of broken-symmetry Chern insulators and resolve sharp phase transitions between competing states with different topological quantum numbers and different occupations of the spin-valley flavour. Our measurements determine the energy spectrum of interacting Hofstadter subbands in magic-angle twisted bilayer graphene and map out the phase diagram of flavour occupancy. In addition, we observe full lifting of the degeneracy of the zeroth Landau levels together with level crossings, indicating moiré valley splitting. We propose a unified flavour polarization mechanism to understand the intricate interplay of topology, interactions and symmetry breaking as a function of density and applied magnetic field in this system.
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页码:825 / 831
页数:6
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