Model of plasmon excitations in a bundle and two-dimensional array of nanotubes
Tibab McNeish, Godfrey Gumbs, and Antonios Balassis

TL;DR
This paper models and calculates plasmon excitations in bundles and 2D arrays of aligned nanotubes, revealing how Coulomb interactions influence plasmon dispersion and degeneracy lifting.
Contribution
It introduces a self-consistent field theory for plasmon dispersion in nanotube systems, accounting for intertube Coulomb interactions and their effects on collective modes.
Findings
Intertube Coulomb interactions couple different angular momentum plasmons.
Plasmon energies exhibit periodic dependence on transverse wave vector.
Optical plasmons arise due to Coulomb coupling in nanotube bundles.
Abstract
We calculate the plasma excitations in a bundle as well as a two-dimensional (2D) periodic array of aligned parallel multishell nanotubes on a substrate. The carbon nanotubes are oriented perpendicular to the substrate. The model we use for the system is an electron gas confined to the surface of an infinitely long cylinder embedded in a background dielectric medium. Electron tunneling between individual tubules is neglected. We include the Coulomb interaction between electrons on the same tubule and on different tubules for the same nanotube and neighboring nanotubes. We present a self-consistent field theory for the dispersion equation for intrasubband and intersubband plasmon excitations. For both the bundle and 2D array of aligned parallel nanotubes, the dispersion relation of the collective modes is determined by a three-dimensional wave vector with components in the direction of…
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