Length-dependent resistance model for a single-wall Carbon nanotube
arXiv:cond-mat/0501008 · doi:10.1016/j.physe.2008.06.005
Abstract
The non-linear length-dependent resistance, observed in single-wall Carbon nanotubes (SNTs) is explained through the recently proposed ionization energy () based Fermi-Dirac statistics (FDS). The length here corresponds to the Carbon atoms number () along the SNT. It is also shown that is associated with , which can be attributed to different semiconducting properties in their respective and directions.
Published
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- Reversible carrier-type transition in gas-sensing oxides and nanostructures
- Many-body Hamiltonian with screening parameter and ionization energy
- Controlling electronic and adiabatic isolation of quantum dots from the substrate: An ionization-energy theoretic study
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