\begin{document}$ \pm Y $\end{document}, II: \begin{document}$ +Z $\end{document}, III: \begin{document}$ \pm Y $\end{document}] direction, the edge states form a band-gap under the influence of the Y-direction exchange field. The band-gap width is directly proportional to the exchange field strength M, and the conductance is zero in an energy range of \begin{document}$ -M<E<M $\end{document}. When the exchange fields in the direction of \begin{document}$ +Z $\end{document} or \begin{document}$ -Z $\end{document} are applied, respectively, to the upper edge region and the lower edge region at the same time, the spin-up energy band and the spin-down energy band move to a high energy region in opposite directions, and strong spin splitting occurs in the edge state and bulk bands. Increasing the strength of the exchange field, the range of spin polarization of conductance spreads from the high energy region to the low energy region. When the directions of the exchange field are [I: \begin{document}$ \mp Z $\end{document}, II: \begin{document}$ \pm Y $\end{document}, III: \begin{document}$ \pm Z $\end{document}], the edge states are spin degenerate, but the weak spin splitting occurs in the bulk bands. Under the condition of different exchange field strengths, the spin-dependent conductance maintains a conductance platform of \begin{document}$ G_\sigma=e^2/h $\end{document} in the same energy range of \begin{document}$ -\lambda_{\rm so} <E<\lambda_{\rm so} $\end{document}."> - 必威体育下载

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Zheng Jun, Ma Li, Xiang Yang, Li Chun-Lei, Yuan Rui-Yang, Chen Jing
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  • Abstract views:3545
  • PDF Downloads:85
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  • Received Date:14 February 2022
  • Accepted Date:17 March 2022
  • Available Online:02 July 2022
  • Published Online:20 July 2022

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