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      Atomic layers of hybridized boron nitride and graphene domains.

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          Abstract

          Two-dimensional materials, such as graphene and monolayer hexagonal BN (h-BN), are attractive for demonstrating fundamental physics in materials and potential applications in next-generation electronics. Atomic sheets containing hybridized bonds involving elements B, N and C over wide compositional ranges could result in new materials with properties complementary to those of graphene and h-BN, enabling a rich variety of electronic structures, properties and applications. Here we report the synthesis and characterization of large-area atomic layers of h-BNC material, consisting of hybridized, randomly distributed domains of h-BN and C phases with compositions ranging from pure BN to pure graphene. Our studies reveal that their structural features and bandgap are distinct from those of graphene, doped graphene and h-BN. This new form of hybrid h-BNC material enables the development of bandgap-engineered applications in electronics and optics and properties that are distinct from those of graphene and h-BN.

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          Author and article information

          Journal
          Nat Mater
          Nature materials
          Springer Science and Business Media LLC
          1476-1122
          1476-1122
          May 2010
          : 9
          : 5
          Affiliations
          [1 ] Department of Mechanical Engineering & Materials Science, Rice University, Houston, Texas 77005, USA.
          Article
          nmat2711
          10.1038/nmat2711
          20190771
          40ef6e51-05e6-4a5c-b272-64562b95b0ab
          History

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