4.3 Article

Graphene on clean (0001) α-quartz: Numerical determination of a minimum energy path from metal to semiconductor

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出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/pssb.201600111

关键词

covalent bonds; density functional theory calculations; graphene on alpha-quartz; minimum energy path; van der Waals bond

资金

  1. CINECA, ISCRA C [HP10C6H6O1]

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By means of DFT calculations, we have individuated a minimum-energy path connecting two energy minima of clean graphene on clean and relaxed oxygen-terminated (0001)-SiO2 substrate in the alpha-quartz configuration: one characterized by mutual graphene-SiO2 substrate distance of similar to 2.8 angstrom and weak (van der Waals) bonds between them, the other by mutual distance of similar to 1.4 angstrom, and presence of strong covalent C-O bonds. Our calculations show that the pathway connecting the two minima goes through a transition state and that the two minima are separated by a barrier of similar to 2.25 eV. The covalent C-O bonds, which characterize the lower-energy configuration, induce significant corrugation of the graphene overlayer with consequent important modification of its electronic band structure and transport properties. In particular, we show that a small gap (E-G similar to 0.16 eV) opens in the electronic band structure of the graphene/SiO2 system, and the conical features around the Dirac points are lost. Correspondingly, at the graphene/SiO2 interface, the diffuse pi-pi conjugation of the isolated graphene layer is modified by the appearance of near-sp(3) carbon atoms bound to the top oxygens of the SiO2. This fact also affects conductances and I-V characteristics which become different along different cell directions of the graphene overlayer. Our analysis suggests that the energy barrier between the van der Waals and the covalent minima could be overcome by applying a uniform pressure on the graphene overlayer due to the formation of chemical bonds which are important for the experimental integration of graphene on Si-compatible technology. (C) 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim

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