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Tunable Moir\'e Bands and Strong Correlations in Small-Twist-Angle Bilayer Graphene

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arxiv 1703.00888 v1 pith:C4TJFFQE submitted 2017-03-02 cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el

Tunable Moir\'e Bands and Strong Correlations in Small-Twist-Angle Bilayer Graphene

classification cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el
keywords bilayergraphenemoirangleselectronicpropertiestwistanomalous
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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According to electronic structure theory, bilayer graphene is expected to have anomalous electronic properties when it has long-period moir\'e patterns produced by small misalignments between its individual layer honeycomb lattices. We have realized bilayer graphene moir\'e crystals with accurately controlled twist angles smaller than 1 degree and studied their properties using scanning probe microscopy and electron transport. We observe conductivity minima at charge neutrality, satellite gaps that appear at anomalous carrier densities for twist angles smaller than 1 degree, and tunneling densities-of-states that are strongly dependent on carrier density. These features are robust up to large transverse electric fields. In perpendicular magnetic fields, we observe the emergence of a Hofstadter butterfly in the energy spectrum, with four-fold degenerate Landau levels, and broken symmetry quantum Hall states at filling factors 1, 2, 3. These observations demonstrate that at small twist angles, the electronic properties of bilayer graphene moir\'e crystals are strongly altered by electron-electron interactions.

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