Superlattices consisting of “lines” of adsorbed hydrogen atom pairs on graphene
- 1 March 2007
- journal article
- Published by Pleiades Publishing Ltd in JETP Letters
- Vol. 85 (1) , 77-81
- https://doi.org/10.1134/s002136400701016x
Abstract
The structures and electron properties of new superlattices formed on graphene by adsorbed hydrogen molecules are theoretically described. It has been shown that superlattices of the (n, 0) zigzag type with linearly arranged pairs of H atoms have band structures similar to the spectra of (n, 0) carbon nanotubes. At the same time, superlattices of the (n, n) type with a “staircase” of adsorbed pairs of H atoms are substantially metallic with a high density of electronic states at the Fermi level and this property distinguishes their spectra from the spectra of the corresponding (n, n) nanotubes. The features of the spectra have the Van Hove form, which is characteristic of each individual superlattice. The possibility of using such planar structures with nanometer thickness is discussed.Keywords
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This publication has 18 references indexed in Scilit:
- Raman Spectrum of Graphene and Graphene LayersPhysical Review Letters, 2006
- Ultrathin Epitaxial Graphite: 2D Electron Gas Properties and a Route toward Graphene-based NanoelectronicsThe Journal of Physical Chemistry B, 2004
- Tunable Adsorption on Carbon NanotubesPhysical Review Letters, 2001
- Generalized dielectric breakdown modelPhysical Review B, 1999
- Predictions of Enhanced Chemical Reactivity at Regions of Local Conformational Strain on Carbon Nanotubes: Kinky ChemistryThe Journal of Physical Chemistry B, 1999
- Efficient pseudopotentials for plane-wave calculationsPhysical Review B, 1991
- Empirical potential for hydrocarbons for use in simulating the chemical vapor deposition of diamond filmsPhysical Review B, 1990
- Ground State of the Electron Gas by a Stochastic MethodPhysical Review Letters, 1980
- Self-Consistent Equations Including Exchange and Correlation EffectsPhysical Review B, 1965
- Inhomogeneous Electron GasPhysical Review B, 1964