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  • Letter

Valley-polarized quantum anomalous Hall phase in bilayer graphene with layer-dependent proximity effects

Marc Vila1,*, Jose H. Garcia1, and Stephan Roche1,2

  • 1Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC and BIST, Campus UAB, Bellaterra, 08193 Barcelona, Spain
  • 2ICREA–Institució Catalana de Recerca i Estudis Avançats, 08010 Barcelona, Spain

  • *marc.vila@icn2.cat

Phys. Rev. B 104, L161113 – Published 21 October, 2021

DOI: https://doi.org/10.1103/PhysRevB.104.L161113

Abstract

Realizations of some topological phases in two-dimensional systems rely on the challenge of jointly incorporating spin-orbit and magnetic exchange interactions. Here, we predict the formation and control of a fully valley-polarized quantum anomalous Hall effect in bilayer graphene, by separately imprinting spin-orbit and magnetic proximity effects in different layers. This results in varying spin splittings for the conduction and valence bands, which gives rise to a topological gap at a single Dirac cone. The topological phase can be controlled by a gate voltage and switched between valleys by reversing the sign of the exchange interaction. By performing quantum transport calculations in disordered systems, the chirality and resilience of the valley-polarized edge state are demonstrated. Our findings provide a promising route to engineer a topological phase that could enable low-power electronic devices and valleytronic applications as well as putting forward layer-dependent proximity effects in bilayer graphene as a way to create versatile topological states of matter.

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