Evidence of Topological Edge States in Buckled Antimonene Monolayers

Shi Yu Zhu, Yan Shao, En Wang, Lu Cao, Xuan Yi Li, Zhong Liu Liu, Chen Liu, Li Wei Liu, Jia Ou Wang, Kurash Ibrahim, Jia Tao Sun*, Ye Liang Wang, Shixuan Du, Hong Jun Gao

*Corresponding author for this work

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Abstract

Two-dimensional topological materials have attracted intense research efforts owing to their promise in applications for low-energy, high-efficiency quantum computations. Group-VA elemental thin films with strong spin-orbit coupling have been predicted to host topologically nontrivial states as excellent two-dimensional topological materials. Herein, we experimentally demonstrated for the first time that the epitaxially grown high-quality antimonene monolayer islands with buckled configurations exhibit significantly robust one-dimensional topological edge states above the Fermi level. We further demonstrated that these topologically nontrivial edge states arise from a single p-orbital manifold as a general consequence of atomic spin-orbit coupling. Thus, our findings establish monolayer antimonene as a new class of topological monolayer materials hosting the topological edge states for future low-power electronic nanodevices and quantum computations.

Original languageEnglish
Pages (from-to)6323-6329
Number of pages7
JournalNano Letters
Volume19
Issue number9
DOIs
Publication statusPublished - 11 Sept 2019

Keywords

  • Antimonene monolayer
  • DFT
  • STM
  • quantum spin Hall effect
  • topological edge state

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Zhu, S. Y., Shao, Y., Wang, E., Cao, L., Li, X. Y., Liu, Z. L., Liu, C., Liu, L. W., Wang, J. O., Ibrahim, K., Sun, J. T., Wang, Y. L., Du, S., & Gao, H. J. (2019). Evidence of Topological Edge States in Buckled Antimonene Monolayers. Nano Letters, 19(9), 6323-6329. https://doi.org/10.1021/acs.nanolett.9b02444