Repository logo

Infoscience

  • English
  • French
Log In
Logo EPFL, École polytechnique fédérale de Lausanne

Infoscience

  • English
  • French
Log In
  1. Home
  2. Academic and Research Output
  3. Journal articles
  4. Correlated states in twisted double bilayer graphene
 
research article

Correlated states in twisted double bilayer graphene

Shen, Cheng
•
Chu, Yanbang
•
Wu, QuanSheng  
Show more
March 30, 2020
Nature Physics

Electron-electron interactions play an important role in graphene and related systems and can induce exotic quantum states, especially in a stacked bilayer with a small twist angle(1-7). For bilayer graphene where the two layers are twisted by the 'magic angle', flat band and strong many-body effects lead to correlated insulating states and superconductivity(4-7). In contrast to monolayer graphene, the band structure of untwisted bilayer graphene can be further tuned by a displacement field(8-10), providing an extra degree of freedom to control the flat band that should appear when two bilayers are stacked on top of each other. Here, we report the discovery and characterization of displacement field-tunable electronic phases in twisted double bilayer graphene. We observe insulating states at a half-filled conduction band in an intermediate range of displacement fields. Furthermore, the resistance gap in the correlated insulator increases with respect to the in-plane magnetic fields and we find that the g factor, according to the spin Zeeman effect, is 2, indicating spin polarization at half-filling. These results establish twisted double bilayer graphene as an easily tunable platform for exploring quantum many-body states.

Placing two Bernal-stacked graphene bilayers on top of each other with a small twist angle gives correlated states. As the band structure can be tuned by an electric field, this platform is a more varied setting to study correlated electrons.

  • Details
  • Metrics
Type
research article
DOI
10.1038/s41567-020-0825-9
Web of Science ID

WOS:000522383200002

Author(s)
Shen, Cheng
•
Chu, Yanbang
•
Wu, QuanSheng  
•
Li, Na
•
Wang, Shuopei
•
Zhao, Yanchong
•
Tang, Jian
•
Liu, Jieying
•
Tian, Jinpeng
•
Watanabe, Kenji
Show more
Date Issued

2020-03-30

Publisher

NATURE PUBLISHING GROUP

Published in
Nature Physics
Volume

16

Start page

520

End page

525

Subjects

Physics, Multidisciplinary

•

Physics

•

dirac fermions

•

moire bands

•

insulator

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
C3MP  
Available on Infoscience
April 12, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/168147
Logo EPFL, École polytechnique fédérale de Lausanne
  • Contact
  • infoscience@epfl.ch

  • Follow us on Facebook
  • Follow us on Instagram
  • Follow us on LinkedIn
  • Follow us on X
  • Follow us on Youtube
AccessibilityLegal noticePrivacy policyCookie settingsEnd User AgreementGet helpFeedback

Infoscience is a service managed and provided by the Library and IT Services of EPFL. © EPFL, tous droits réservés