We report total-energy electronic-structure calculations that provide energetics and electronic structures of double-walled carbon nanotubes consisting of semiconducting (n,0) nanotubes. We find that optimum spacing between the walls of the nanotubes is slightly larger than the interlayer spacing of the graphite. We also find that the electronic structures of the double-walled nanotubes with the inner (7,0) nanotube are metallic with multicarrier characters in which electrons and holes exist on inner and outer nanotubes, respectively. Interwall spacing and curvature difference are found to be essential for the electron states around the Fermi level
On the basis of density-functional theory, we study electronic structures of thin carbon nanotube bu...
First-principles pseudopotential-based density functional theory calculations of atomic and electron...
Using carbon nanotubes for electrical conduction applications at the macroscale has been shown to be...
We report first-principles total-energy electronic-structure calculations that provide energetics an...
Metallic single-walled carbon nanotubes have been proposed to be good one-dimensional conductors. Ho...
The electronic spectra for double-wall zigzag and armchair nanotubes are found. The influence of nan...
Electronic structures of zigzag (7, 0) @ (15, 0), (7, 0) @(18, 0), (8, 0)@(16, 0) and chiral (4, 2) ...
By using first-principles calculations, we found that the electronic structures near the Fermi level...
A total-energy electronic-structure calculation is performed to explore energetics and electronic st...
The importance of finite-size effects for the electronic structure of long zigzag and armchair carbo...
The structural and electronic properties of optimized open-ended single-wall carbon nanotubes with z...
Density-functional calculations predict half-metallicity in zigzag single-walled carbon nanotubes of...
This work presents theoretical investigations on carbon nanotubes and specially the electronic struc...
Recent synthesis of nanocomposite structures of graphene nanoribbons (GNRs) encapsulated in a carbon...
Structure of carbon nanotubes Junjie Chen Department of Energy and Power Engineering, School of Me...
On the basis of density-functional theory, we study electronic structures of thin carbon nanotube bu...
First-principles pseudopotential-based density functional theory calculations of atomic and electron...
Using carbon nanotubes for electrical conduction applications at the macroscale has been shown to be...
We report first-principles total-energy electronic-structure calculations that provide energetics an...
Metallic single-walled carbon nanotubes have been proposed to be good one-dimensional conductors. Ho...
The electronic spectra for double-wall zigzag and armchair nanotubes are found. The influence of nan...
Electronic structures of zigzag (7, 0) @ (15, 0), (7, 0) @(18, 0), (8, 0)@(16, 0) and chiral (4, 2) ...
By using first-principles calculations, we found that the electronic structures near the Fermi level...
A total-energy electronic-structure calculation is performed to explore energetics and electronic st...
The importance of finite-size effects for the electronic structure of long zigzag and armchair carbo...
The structural and electronic properties of optimized open-ended single-wall carbon nanotubes with z...
Density-functional calculations predict half-metallicity in zigzag single-walled carbon nanotubes of...
This work presents theoretical investigations on carbon nanotubes and specially the electronic struc...
Recent synthesis of nanocomposite structures of graphene nanoribbons (GNRs) encapsulated in a carbon...
Structure of carbon nanotubes Junjie Chen Department of Energy and Power Engineering, School of Me...
On the basis of density-functional theory, we study electronic structures of thin carbon nanotube bu...
First-principles pseudopotential-based density functional theory calculations of atomic and electron...
Using carbon nanotubes for electrical conduction applications at the macroscale has been shown to be...