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      Gate-tunable imbalanced Kane-Mele model in encapsulated bilayer jacutingaite

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          Abstract

          We study free, capped and encapsulated bilayer jacutingaite Pt\2HgSe\3 from first principles. While the free standing bilayer is a large gap trivial insulator, we find that the encapsulated structure has a small trivial gap due to the competition between sublattice symmetry breaking and sublattice-dependent next-nearest-neighbor hopping. Upon the application of a small perpendicular electric field, the encapsulated bilayer undergoes a topological transition towards a quantum spin Hall insulator. We find that this topological transition can be qualitatively understood by modeling the two layers as uncoupled and described by an imbalanced Kane-Mele model that takes into account the sublattice imbalance and the corresponding inversion-symmetry breaking in each layer. Within this picture, bilayer jacutingaite undergoes a transition from a 0+0 state, where each layer is trivial, to a 0+1 state, where an unusual topological state relying on Rashba-like spin orbit coupling emerges in only one of the layers.

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          Author and article information

          Journal
          20 July 2020
          Article
          2007.09926
          6449073d-4a0a-4647-a194-0d8656c367d1

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          10 pages, 5 figures
          cond-mat.mes-hall cond-mat.mtrl-sci

          Condensed matter,Nanophysics
          Condensed matter, Nanophysics

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