Oxygen adsorption on graphite and nanotubes
- 15 January 2003
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 118 (3) , 1003-1006
- https://doi.org/10.1063/1.1536636
Abstract
We study the binding of molecular oxygen to a graphene sheet and to a (8,0) single walled carbon nanotube, by means of spin-unrestricted density-functional calculations. We find that triplet oxygen retains its spin-polarized state when interacting with graphene or the nanotube. This leads to the formation of a weak bond with essentially no charge transfer between the molecule and the sheet or tube, as one would expect for a physisorptive bond. This result is independent on the approximation used for the exchange-correlation functional. The binding strength, however, depends strongly on the functional, reflecting the inability of current approximation functionals to deal correctly with dispersion forces. Gradient-corrected functionals yield very weak binding at distances around 4 Å, whereas local density functional results yield substantially stronger binding for both graphene and the nanotube at distances of less than 3 Å. The picture of oxygen physisorption is not substantially altered by the presence of topological defects such as 5–7 Stone–Wales pairs.Keywords
This publication has 25 references indexed in Scilit:
- Physisorption of molecular oxygen on single-wall carbon nanotube bundles and graphitePhysical Review B, 2002
- Theoretical Study of Oxygen Adsorption on Graphite and the (8,0) Single-walled Carbon NanotubeThe Journal of Physical Chemistry B, 2001
- Electronic Properties of Oxidized Carbon NanotubesPhysical Review Letters, 2000
- Chemical control of nanotube electronicsNanotechnology, 2000
- QM(DFT) and MD studies on formation mechanisms of C60fullerenesNanotechnology, 2000
- Nanotube Molecular Wires as Chemical SensorsScience, 2000
- Backbond Oxidation of the Si(001) Surface: Narrow Channel of Barrierless OxidationPhysical Review Letters, 1998
- Potentials of physical adsorptionSurface Science Reports, 1991
- Self-interaction correction to density-functional approximations for many-electron systemsPhysical Review B, 1981
- Ground State of the Electron Gas by a Stochastic MethodPhysical Review Letters, 1980