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Fermi Velocity Reduction of Dirac Fermions around the Brillouin Zone Center in In2Se3–Bilayer Graphene Heterostructures

  • Zhenyu Wang*
  • , Zhanyang Hao
  • , Yayun Yu
  • , Yuan Wang
  • , Shiv Kumar
  • , Xiangnan Xie
  • , Mingyu Tong
  • , Ke Deng
  • , Yu Jie Hao
  • , Xiao Ming Ma
  • , Ke Zhang
  • , Cai Liu
  • , Mingxiang Ma
  • , Jiawei Mei
  • , Guang Wang
  • , Eike F. Schwier
  • , Kenya Shimada
  • , Fufang Xu
  • , Chang Liu
  • , Wen Huang
  • Jianfeng Wang*, Tian Jiang, Chaoyu Chen*
*此作品的通讯作者
  • Academy of Military Medical Science China
  • National University of Defense Technology
  • Beijing Academy of Quantum Information Sciences
  • Southern University of Science and Technology
  • Hiroshima University
  • China Academy of Engineering Physics

科研成果: 期刊稿件文章同行评审

摘要

Emergent phenomena such as unconventional superconductivity, Mott-like insulators, and the peculiar quantum Hall effect in graphene-based heterostructures are proposed to stem from the superlattice-induced renormalization of (moiré) Dirac fermions at the graphene Brillouin zone corners. Understanding the corresponding band structure commonly demands photoemission spectroscopy with both sub-meV resolution and large-momentum coverage, beyond the capability of the current state-of-the-art. Here the realization of moiré Dirac cones around the Brillouin zone center in monolayer In2Se3/bilayer graphene heterostructure is reported. The renormalization is evidenced by reduced Fermi velocity (≈23%) of the moiré Dirac cones and the reshaped Dirac point at the Γ point where they intersect. While there have been many theoretical predictions and much indirect experimental evidence, the findings here are the first direct observation of Fermi velocity reduction of the moiré Dirac cones. These features suggest strong In2Se3/graphene interlayer coupling, which is comparable with that in twisted bilayer graphene. The strategy expands the choice of materials in the heterostructure design and stimulates subsequent broad investigations of emergent physics at the sub-meV energy scale.

源语言英语
文章编号2007503
期刊Advanced Materials
33
17
DOI
出版状态已出版 - 28 4月 2021
已对外发布

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