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

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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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          Electronic transport in two-dimensional graphene

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            Emergence of superlattice Dirac points in graphene on hexagonal boron nitride

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              New Generation of Massless Dirac Fermions in Graphene under External Periodic Potentials

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                Author and article information

                Journal
                Science
                Science
                American Association for the Advancement of Science (AAAS)
                0036-8075
                1095-9203
                June 20 2013
                June 21 2013
                May 16 2013
                June 21 2013
                : 340
                : 6139
                : 1427-1430
                Article
                10.1126/science.1237240
                23686343
                1efa484d-b9af-41a9-af2b-98be5765535a
                © 2013
                History

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