Effects of chirality and diameter on the transport properties of semiconducting carbon nanotubes
M. Z. Kauser, P. P. Ruden
Abstract
M. Z. Kauser, P. P. Ruden
Abstract
The effects of chirality and diameter on the electron transport properties of semiconducting, single wall, carbon nanotubes are explored by the Ensemble Monte Carlo method and an iterative solution of the Boltzmann’s transport equation. The results show that the effect of chirality is significant for small diameter tubes and becomes negligible at large diameters. The two zigzag carbon nanotube groups (+1 and −1) set upper and lower bounds for important low- and high-field transport parameters. This trend can be attributed to the band structure, especially to the effective mass of the lowest subband. The effect of diameter on the transport properties is stronger than those of chirality and group.
OpenAlex reports 14 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
The effects of chirality and diameter on the electron transport properties of semiconducting, single wall, carbon nanotubes are explored by the Ensemble Monte Carlo method and an iterative solution of the Boltzmann’s transport equation. The results show that the effect of chirality is significant for small diameter tubes and becomes negligible at large diameters. The two zigzag carbon nanotube groups (+1 and −1) set upper and lower bounds for important low- and high-field transport parameters. This trend can be attributed to the band structure, especially to the effective mass of the lowest subband. The effect of diameter on the transport properties is stronger than those of chirality and group.
Key concepts: Carbon nanotube, Zigzag, Chirality (physics), Materials science, Boltzmann equation, Boltzmann constant, Electron transport chain, Monte Carlo method