| Literature DB >> 27176628 |
Sami Paavilainen1, Matti Ropo1,2, Jouko Nieminen1, Jaakko Akola1,2, Esa Räsänen1.
Abstract
We uncover the electronic structure of molecular graphene produced by adsorbed CO molecules on a copper (111) surface by means of first-principles calculations. Our results show that the band structure is fundamentally different from that of conventional graphene, and the unique features of the electronic states arise from coexisting honeycomb and Kagome symmetries. Furthermore, the Dirac cone does not appear at the K-point but at the Γ-point in the reciprocal space and is accompanied by a third, almost flat band. Calculations of the surface structure with Kekulé distortion show a gap opening at the Dirac point in agreement with experiments. Simple tight-binding models are used to support the first-principles results and to explain the physical characteristics behind the electronic band structures.Entities:
Keywords: Kagome; Kekulé; Molecular graphene; density functional theory; tight binding
Year: 2016 PMID: 27176628 DOI: 10.1021/acs.nanolett.6b00397
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189