English

Capillary Rise in Nanopores: Molecular Dynamics Evidence for the Lucas-Washburn Equation

Fluid Dynamics 2009-11-13 v1 Computational Physics

Abstract

When a capillary is inserted into a liquid, the liquid will rapidly flow into it. This phenomenon, well studied and understood on the macroscale, is investigated by Molecular Dynamics simulations for coarse-grained models of nanotubes. Both a simple Lennard-Jones fluid and a model for a polymer melt are considered. In both cases after a transient period (of a few nanoseconds) the meniscus rises according to a time\sqrt{\textrm{time}}-law. For the polymer melt, however, we find that the capillary flow exhibits a slip length δ\delta, comparable in size with the nanotube radius RR. We show that a consistent description of the imbibition process in nanotubes is only possible upon modification of the Lucas-Washburn law which takes explicitly into account the slip length δ\delta.

Keywords

Cite

@article{arxiv.physics/0703282,
  title  = {Capillary Rise in Nanopores: Molecular Dynamics Evidence for the Lucas-Washburn Equation},
  author = {D. I. Dimitrov and A. Milchev and K. Binder},
  journal= {arXiv preprint arXiv:physics/0703282},
  year   = {2009}
}

Comments

4 pages 4 figures