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Phys. Rev. B 67, 035401 (2003) [13 pages]

Accurate density functional calculations for the phonon dispersion relations of graphite layer and carbon nanotubes

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O. Dubay and G. Kresse
Institut für Materialphysik, Universität Wien and Center for Computational Material Science, Sensengasse 8, A-1090 Wien, Austria

See Also: Erratum

Received 10 June 2002; revised 27 September 2002; published 6 January 2003

Accurate calculations for the phonon dispersion relations of single-wall armchair and zigzag nanotubes are presented. The calculations are performed using a plane-wave basis set and density functional theory. To ensure the accuracy of the presented calculations, the phonon dispersion relation of an isolated graphite layer is calculated and the results are compared to experiment. Errors are small, but some notable discrepancies between experiment and theory are observed and discussed. For armchair and zigzag nanotubes the dependence of Raman-active and infrared-active modes on the radius is investigated in detail concentrating on the modes in the G band. The results are compared to those predicted by the zone-folding method using the calculated force constants for graphite. We find a general softening of most high-frequency modes and a substantial lowering of one particular longitudinal A1 mode in metallic tubes. We associate this mode with the Breit-Wigner-Fano lines observed usually in metallic tubes. The precise electronic mechanism leading to the softening of the longitudinal A1 mode is discussed in detail.

© 2003 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevB.67.035401
DOI:
10.1103/PhysRevB.67.035401
PACS:
63.22.+m, 63.20.Dj, 63.20.Kr, 71.15.Mb

See Also

Erratum: O. Dubay and G. Kresse, Erratum: Accurate density functional calculations for the phonon dispersion relations of graphite layer and carbon nanotubes [Phys. Rev. B 67, 035401 (2003)], Phys. Rev. B 69, 089906 (2004).