Dispersion of carbon nanotubes with SDS surfactants: a study from a binding energy perspective
Диспергирование углеродных нанотрубок с помощью поверхностно-активных веществ SDS: исследование с точки зрения энергии связывания
2011-01-01
SCID: 54.1/xjmg927v
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binding energycarbon nanotube dispersionmolecular mechanics simulationssodium dodecyl sulfateultrasonication
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Abstract (AI)
Dispersion of carbon nanotubes with sodium dodecyl sulfate (SDS) surfactant is reported by molecular mechanics simulations from an energy perspective. The interaction energy of carbon nanotubes in a tube bundle is first calculated to estimate the force sufficient to separate it from the bundle. The binding energy between increasing numbers of SDS molecules with a carbon nanotube is next estimated to identify the threshold number of surfactant molecules for a possible dispersion. With the help of ultrasonication, a sufficient number of SDS molecules are found to penetrate into an initial gap between a single tube and other nanotubes in the bundle. Owing to further congregation of the surfactants at the gap site, the gap becomes enlarged until complete dispersion. In addition to the dispersion observation in view of the interaction and binding energy perspectives, four congregation processes were identified to reveal the aggregation morphologies of SDS surfactants on the surface of carbon nanotubes as well as the effect of diameter of a carbon nanotube on the adsorption density.
Key Findings
1
A threshold number of SDS molecules is identified as necessary for potentially dispersing a nanotube from the bundle.
2
Four SDS congregation processes reveal distinct surface aggregation morphologies and show that nanotube diameter affects adsorption density.
3
Molecular mechanics simulations analyze SDS-mediated carbon-nanotube dispersion from interaction-energy and binding-energy perspectives.
4
The calculated nanotube-bundle interaction energy estimates the force required to separate an individual nanotube from the bundle.
5
Ultrasonication drives SDS molecules into the initial gap, where further surfactant congregation enlarges the gap until complete dispersion.
Research Object
carbon nanotube bundles dispersed with sodium dodecyl sulfate (SDS) surfactants
Research Subject
binding and interaction energies governing SDS adsorption, aggregation, and the ultrasonication-assisted dispersion of carbon nanotube bundles, including diameter-dependent adsorption density
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2011-01-01
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