Transport properties of nitrogen in single walled carbon nanotubes
- 22 February 2004
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 120 (8) , 3855-3863
- https://doi.org/10.1063/1.1643726
Abstract
Transport properties including collective and tracer diffusivities of nitrogen, modeled as a diatomic molecule, in single walled carbon nanotubes have been studied by equilibrium molecular dynamics at different temperatures and as a function of pressure. It is shown that while the asymptotic decay of the translational and rotational velocity autocorrelation function is algebraic, the collective velocity decays exponentially with the relaxation time related to the interfacial friction. The tracer diffusivity in the nanochannel, which is comparable in magnitude with diffusivity in the equilibrium bulk phase, depends only weakly on the conditions at the fluid-solid interface, whereas the collective diffusivity is a strong function of the hydrodynamic boundary conditions and is found to be three orders of magnitude higher than self-diffusivity in carbon nanotubes and for the comparatively rough surface of the rare-gas tube it is one order of magnitude greater. A relationship between the collective diffusivity and the Maxwell coefficient describing wall collisions is obtained. The transport coefficients appear to be insensitive to the long-range details of the potential function.Keywords
This publication has 49 references indexed in Scilit:
- Rapid Imbibition of Fluids in Carbon NanotubesPhysical Review Letters, 2003
- DL_POLY: Application to molecular simulationMolecular Simulation, 2002
- A critical comparison of equilibrium, non-equilibrium and boundary-driven molecular dynamics techniques for studying transport in microporous materialsThe Journal of Chemical Physics, 2001
- Modelling Gas Adsorption in Slit-Pores Using Monte Carlo SimulationMolecular Simulation, 2001
- Adsorption of Nitrogen in Carbon Nanotube ArraysLangmuir, 1999
- Molecular Simulation of Fluid Adsorption in BuckytubesLangmuir, 1995
- Nonequilibrium molecular dynamics simulation of diffusion and flow in thin microporous membranesThe Journal of Chemical Physics, 1994
- Phase Diagrams of Diatomic Molecules Using the Gibbs Ensemble Monte Carlo MethodMolecular Simulation, 1994
- Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Recommendations 1984)Pure and Applied Chemistry, 1985
- Stationary nonequilibrium states by molecular dynamics. II. Newton's lawPhysical Review A, 1984