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Electrically Tunable Flat Bands and Magnetism in Twisted Bilayer Graphene (1905.07651v4)

Published 18 May 2019 in cond-mat.mes-hall, cond-mat.mtrl-sci, and cond-mat.str-el

Abstract: Twisted graphene bilayers provide a versatile platform to engineer metamaterials with novel emergent properties by exploiting the resulting geometric moir\'{e} superlattice. Such superlattices are known to host bulk valley currents at tiny angles ($\alpha\approx 0.3 \circ$) and flat bands at magic angles ($\alpha \approx 1\circ$). We show that tuning the twist angle to $\alpha*\approx 0.8\circ$ generates flat bands away from charge neutrality with a triangular superlattice periodicity. When doped with $\pm 6$ electrons per moir\'e cell, these bands are half-filled and electronic interactions produce a symmetry-broken ground state (Stoner instability) with spin-polarized regions that order ferromagnetically. Application of an interlayer electric field breaks inversion symmetry and introduces valley-dependent dispersion that quenches the magnetic order. With these results, we propose a solid-state platform that realizes electrically tunable strong correlations.

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