Spin-valley polarized transport in a field-controllable bilayer silicene superlattice

Guangqin Xiong, Duojia Wang, Fangjie Xu, Yuxuan Ma, Xin Li, Tingting Wei, and Yu Wang
Phys. Rev. B 106, 205409 – Published 14 November 2022

Abstract

We have theoretically investigated the spin-valley asymmetric transport of massive Dirac fermions in the field-controllable bilayer silicene superlattices. The spin-valley dependent ballistic transmission, conductance, and polarization have been systematically calculated by formulating the scattering matrix method for the completed four-band low-energy effective Hamiltonian. Our results uncover that for a single valley transport, near-perfect spin polarization and its perfect switching could be efficiently modulated by the gate field engineering. Under the one-dimensional periodic field modulation, two types of flat bands with less dispersion and, importantly, the perfect contrast in the spin-dependent subbands are observed for the bilayer silicene superlattice. Together with its larger spin-orbit coupling and better stability, these spin-valley asymmetric characteristics engineered by the gate field indicate that the field-controllable bilayer silicene could be a potential component candidate to achieve a fully spin-valley polarized beam for quantum logic applications.

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  • Received 23 July 2022
  • Revised 5 October 2022
  • Accepted 31 October 2022

DOI:https://doi.org/10.1103/PhysRevB.106.205409

©2022 American Physical Society

Physics Subject Headings (PhySH)

  1. Research Areas
  1. Physical Systems
Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Guangqin Xiong, Duojia Wang, Fangjie Xu, Yuxuan Ma, Xin Li, Tingting Wei, and Yu Wang*

  • Department of Physics, Faculty of Science, Kunming University of Science and Technology, Kunming 650500, China

  • *wyraul107@163.com

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Issue

Vol. 106, Iss. 20 — 15 November 2022

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