English

Slip-Mediated Dewetting of Polymer Microdroplets

Soft Condensed Matter 2016-04-27 v3 Fluid Dynamics

Abstract

Classical hydrodynamic models predict that infinite work is required to move a three-phase contact line, defined here as the line where a liquid/vapor interface intersects a solid surface. Assuming a slip boundary condition, in which the liquid slides against the solid, such an unphysical prediction is avoided. In this article, we present the results of experiments in which a contact line moves and where slip is a dominating and controllable factor. Spherical cap shaped polystyrene microdroplets, with non-equilibrium contact angle, are placed on solid self-assembled monolayer coatings from which they dewet. The relaxation is monitored using \textit{in situ} atomic force microscopy. We find that slip has a strong influence on the droplet evolutions, both on the transient non-spherical shapes and contact line dynamics. The observations are in agreement with scaling analysis and boundary element numerical integration of the governing Stokes equations, including a Navier slip boundary condition.

Keywords

Cite

@article{arxiv.1507.03451,
  title  = {Slip-Mediated Dewetting of Polymer Microdroplets},
  author = {Joshua D. McGraw and Tak Shing Chan and Simon Maurer and Thomas Salez and Michael Benzaquen and Élie Raphaël and Martin Brinkmann and Karin Jacobs},
  journal= {arXiv preprint arXiv:1507.03451},
  year   = {2016}
}

Comments

19 pages, 4 figures + 6 figures in supporting information

R2 v1 2026-06-22T10:10:45.957Z