4.8 Article

Epitaxial growth of ultraflat stanene with topological band inversion

期刊

NATURE MATERIALS
卷 17, 期 12, 页码 1081-+

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41563-018-0203-5

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资金

  1. National Key R&D Program of China [2016YFA0200603, 2017YFA0205004, 2018YFA0305603, 2016YFA0301001, 2018YFA0307100]
  2. 'Strategic Priority Research Program' of CAS [XDB01020100]
  3. National Natural Science Foundation of China [91321309, 51132007, 21421063, 21473174, 21273210, 51788104, 11674188, 11334006]
  4. Fundamental Research Funds for the Central Universities [WK2060190084, WK2340000065]
  5. Youth Innovation Promotion Association of CAS [2011322]
  6. Tsinghua University Initiative Scientific Research Program
  7. National Thousand-Young-Talents Program
  8. Beijing Advanced Innovation Center for Future Chip (ICFC)
  9. US Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering [DE-AC02-76SF00515]

向作者/读者索取更多资源

Two-dimensional (2D) topological materials, including quantum spin/anomalous Hall insulators, have attracted intense research efforts owing to their promise for applications ranging from low-power electronics and high-performance thermo-electrics to fault-tolerant quantum computation. One key challenge is to fabricate topological materials with a large energy gap for room-temperature use. Stanene-the tin counterpart of graphene-is a promising material candidate distinguished by its tunable topological states and sizeable bandgap. Recent experiments have successfully fabricated stanene, but none of them have yet observed topological states. Here we demonstrate the growth of high-quality stanene on Cu(111) by low-temperature molecular beam epitaxy. Importantly, we discovered an unusually ultraflat stanene showing an in-plane s-p band inversion together with a spin-orbit-coupling-induced topological gap (similar to 0.3 eV) at the Gamma point, which represents a foremost group-IV ultraflat graphene-like material displaying topological features in experiment. The finding of ultraflat stanene opens opportunities for exploring two-dimensional topological physics and device applications.

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