Semiclassical approach to the description of the basic properties of nanoobjects
Creators
- 1. Maitre Jean Brunschvig Research Unit, Chalet Shalva, Randongne (Switzerland)
Description
A review of results obtained in the framework of the semiclassical approach in nanophysics is presented. A semiclassical description based on electrostatics and the Thomas-Fermi model is used to calculate the dimensions of the electronic shell of a fullerene molecule and a carbon nanotube. This simplified approach yields surprisingly accurate results in some cases. The semiclassical approach provides a rather good description of the dimensions of the electronic shell of a fullerene molecule. Two types of dipole oscillations in a fullerene molecule are considered and their frequencies calculated. Similar calculations are performed for a carbon nanotube also. These results look rather reasonable. Three types of dipole oscillations in a carbon nanotube are considered and their frequencies calculated. The frequencies of the longitudinal collective oscillations of delocalized electrons in a carbon pea pod are calculated as well. A metallic cluster is modeled as a spherical ball. It is shown that the metallic cluster is stable; its bulk modulus and the frequency of the dipole oscillation of the electronic shell relative to the ions are calculated
Additional details
Publishing Information
- Journal Title
- Fizika Nizkikh Temperatur
- Journal Volume
- 34
- Journal Issue
- 9
- Journal Page Range
- p. 1063-1071
- ISSN
- 0132-6414
INIS
- Country of Publication
- Ukraine
- Country of Input or Organization
- Ukraine
- INIS RN
- 40022982
- Subject category
- S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY; S74: ATOMIC AND MOLECULAR PHYSICS;
- Descriptors DEI
- DIPOLES; ELECTRONIC STRUCTURE; FULLERENES; KINETIC EQUATIONS; MOLECULES; NANOTUBES; OSCILLATIONS; SEMICLASSICAL APPROXIMATION; SOLID CLUSTERS; THOMAS-FERMI MODEL
- Descriptors DEC
- APPROXIMATIONS; ATOMIC MODELS; CALCULATION METHODS; CARBON; ELEMENTS; EQUATIONS; MATHEMATICAL MODELS; MULTIPOLES; NANOSTRUCTURES; NONMETALS