Massive Dirac Fermions and Hofstadter Butterfly in a van der Waals Heterostructure

Benjamin Hunt(Massachusetts Institute of Technology), Javier Sanchez-Yamagishi(Massachusetts Institute of Technology), Andrea F. Young(Massachusetts Institute of Technology), Matthew Yankowitz(University of Arizona), Brian J. LeRoy(University of Arizona), Kenji Watanabe(National Institute for Materials Science), Takashi Taniguchi(National Institute for Materials Science), Pilkyung Moon(Tohoku University), Mikito Koshino(Tohoku University), Pablo Jarillo‐Herrero(Massachusetts Institute of Technology), R. C. Ashoori(Massachusetts Institute of Technology)
Science
May 17, 2013
Cited by 1,686Open Access
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Abstract

van der Waals heterostructures constitute a new class of artificial materials formed by stacking atomically thin planar crystals. We demonstrated band structure engineering in a van der Waals heterostructure composed of a monolayer graphene flake coupled to a rotationally aligned hexagonal boron nitride substrate. The spatially varying interlayer atomic registry results in both a local breaking of the carbon sublattice symmetry and a long-range moiré superlattice potential in the graphene. In our samples, this interplay between short- and long-wavelength effects resulted in a band structure described by isolated superlattice minibands and an unexpectedly large band gap at charge neutrality. This picture is confirmed by our observation of fractional quantum Hall states at ± 5/3 filling and features associated with the Hofstadter butterfly at ultrahigh magnetic fields.


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