Molecular simulation of hydrogen adsorption in charged single-walled carbon nanotubes
- 1 December 1999
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 111 (21), 9778-9783
- https://doi.org/10.1063/1.480313
Abstract
The adsorption of molecular hydrogen gas onto charged single-walled carbon nanotubes(SWNTs) is studied by grand canonical Monte Carlo (GCMC) computer simulation. The quadrupole moment and induced dipole interaction of hydrogen with “realistically” charged (0.1 e/C) nanotubes leads to an increase in adsorption relative to the uncharged tubes of ∼10%–20% for T=298 K and 15%–30% for 77 K. Long-range electrostatic interactions makes second layer (exohedral) adsorption significantly higher. Hydrogen orientation-ordering effects and adsorptionanisotropy in the electrostatic field of the nanotube were observed. The geometry of nanotube arrays was optimized at fixed values of charge, temperature, and pressure. In general, negatively charged nanotubes lead to more adsorption because the quadrupole moment of hydrogen is positive. Calculated isotherms indicate that even charged nanotube arrays are not suitable sorbents for achieving the DOE target for hydrogen transportation and storage at normal temperatures, unless the charges on the nanotubes are unrealistically large.Keywords
This publication has 29 references indexed in Scilit:
- Hydrogen adsorption and cohesive energy of single-walled carbon nanotubesApplied Physics Letters, 1999
- An Intrinsic Carbon Nanotube Heterojunction DiodeThe Journal of Physical Chemistry B, 1999
- Hydrogen desorption and adsorption measurements on graphite nanofibersApplied Physics Letters, 1998
- Effect of intertube coupling on the electronic structure of carbon nanotube ropesPhysical Review B, 1998
- Monte Carlo simulations of hydrogen adsorption in single-walled carbon nanotubesThe Journal of Chemical Physics, 1998
- Transport properties of alkali-metal-doped single-wall carbon nanotubesPhysical Review B, 1998
- Energetics of bent carbon nanotubesPhysical Review B, 1998
- Phase equilibrium of quantum fluids from simulation: Hydrogen and neonFluid Phase Equilibria, 1997
- Low-pressure adsorption storage of hydrogenInternational Journal of Hydrogen Energy, 1994
- Hydrogen storage on superactivated carbon at refrigeration temperaturesInternational Journal of Hydrogen Energy, 1989