Work functions of pristine and alkali-metal intercalated carbon nanotubes and bundles
arXiv:cond-mat/0111103 · doi:10.1103/PhysRevB.65.193401
Abstract
The work functions (WF) of single-walled carbon nanotubes and bundles are studied using first principles methods. For individual metallic tubes, the WF is independent of the chirality and increase slightly with tube diameter. For semiconducting tubes, the WF (as defined by the HOMO energy) decreases rapidly. The WF of nanotube bundles ( 5 eV) shows no clear dependence on the tube size and chirality, slightly higher than individual tubes. Calculations on finite tubes show no substantial difference in the tube end and the side wall. Upon alkali-metal intercalation, the WF decreases dramatically and the electronic states near the Fermi level are significantly modified. The metallic and semiconducting nanotubes bundles become indistinguishable.
14 pages, 4 figures
Cited by in corpus (9)
- First Principles Study of Work Functions of Single Wall Carbon Nanotubes
- Tailorable acceptor and donor pairs for molecular electronics
- Potential barrier of Graphene edges
- Integrated Atom Detector Based on Field Ionization near Carbon Nanotubes
- Electron-vibron coupling in suspended nanotubes
- The exchange-correlation potential correction to the vacuum potential barrier of graphene edge
- Force and magnetic field sensor based on measurement of tunneling conductance between ends of coaxial carbon nanotubes
- Force and energy dissipation variations in non-contact atomic force spectroscopy on composite carbon nanotube systems
- Dynamical Characteristics of a Hodgkin-Huxley neuron