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Deconfinement of Mott localized electrons into topological and spin–orbit-coupled Dirac fermions

ORAL

Abstract

We show that stacking 1T-TaSe2 into bilayers can deconfine electrons from a deep Mott insulating state in the monolayer to a system of correlated Dirac fermions subject to sizable spin–orbit coupling in the bilayer. 1T-TaSe2 develops a Star-of-David charge density wave pattern in each layer. When the Star-of-David centers belonging to two adjacent layers are stacked in a honeycomb pattern, the system realizes a generalized Kane–Mele–Hubbard model in a regime where Dirac semimetallic states are subject to significant Mott–Hubbard interactions and spin–orbit coupling. At charge neutrality, the system is close to a quantum phase transition between a quantum spin Hall and an antiferromagnetic insulator. We identify a perpendicular electric field and the twisting angle as two knobs to control topology and spin–orbit coupling in the system. Their combination can drive it across hitherto unexplored grounds of correlated electron physics, including a quantum tricritical point and an exotic first-order topological phase transition.

Presenters

  • Tim Wehling

    University of Bremen

Authors

  • José Pizarro

    University of Bremen

  • Severino Elia Adler

    University of Würzburg

  • Karim Zantout

    Goethe University Frankfurt, Goethe University Frankfurt am Main

  • Thomas Mertz

    Goethe University Frankfurt, Goethe-Universität Frankfurt, Goethe University Frankfurt am Main

  • Paolo Barone

    Consiglio Nazionale delle Ricerche, CNR-SPIN

  • Roser Valenti

    Goethe University Frankfurt, Goethe-Universität Frankfurt, Goethe University Frankfurt am Main, ITP, Goethe University Frankfurt, Institute for Theoretical Physics, Goethe-Universitat Frankfurt, Goethe-University Frankfurt, Institut für Theoretische Physik, Goethe University Frankfurt

  • Giorgio Sangiovanni

    Institut fuer Theoretische Physik und Astrophysik, Universitaet Wuerzburg, University of Würzburg

  • Tim Wehling

    University of Bremen