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      Experimental realization of two-dimensional boron sheets

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          Abstract

          A variety of two-dimensional materials have been reported in recent years, yet single-element systems such as graphene and black phosphorus have remained rare. Boron analogues have been predicted, as boron atoms possess a short covalent radius and the flexibility to adopt sp(2) hybridization, features that favour the formation of two-dimensional allotropes, and one example of such a borophene material has been reported recently. Here, we present a parallel experimental work showing that two-dimensional boron sheets can be grown epitaxially on a Ag(111) substrate. Two types of boron sheet, a β12 sheet and a χ3 sheet, both exhibiting a triangular lattice but with different arrangements of periodic holes, are observed by scanning tunnelling microscopy. Density functional theory simulations agree well with experiments, and indicate that both sheets are planar without obvious vertical undulations. The boron sheets are quite inert to oxidization and interact only weakly with their substrate. We envisage that such boron sheets may find applications in electronic devices in the future.

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          Author and article information

          Journal
          Nature Chemistry
          Nature Chem
          Springer Science and Business Media LLC
          1755-4330
          1755-4349
          June 2016
          March 28 2016
          June 2016
          : 8
          : 6
          : 563-568
          Article
          10.1038/nchem.2491
          27219700
          418495f2-2411-486a-9917-a27aa0a3517a
          © 2016

          http://www.springer.com/tdm

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