Equilibrium contact angle and adsorption layer properties with surfactants
Abstract
The three-phase contact line of a droplet on a smooth surface can be characterized by the Young-Dupr\'e equation. It relates the interfacial energies with the macroscopic contact angle . On the mesoscale, wettability is modeled by a film-height-dependent wetting energy . Macro- and mesoscale description are consistent if where and are the liquid-gas interface energy and the thickness of the equilibrium liquid adsorption layer, respectively. Here, we derive a similar consistency condition for the case of a liquid covered by an insoluble surfactant. At equilibrium, the surfactant is spatially inhomogeneously distributed implying a non-trivial dependence of on surfactant concentration. We derive macroscopic and mesoscopic descriptions of a contact line at equilibrium and show that they are only consistent if a particular dependence of the wetting energy on the surfactant concentration is imposed.This is illustrated by a simple example of dilute surfactants, for which we show excellent agreement between theory and time-dependent numerical simulations.
Cite
@article{arxiv.1802.04042,
title = {Equilibrium contact angle and adsorption layer properties with surfactants},
author = {Uwe Thiele and Jacco H. Snoeijer and Sarah Trinschek and Karin John},
journal= {arXiv preprint arXiv:1802.04042},
year = {2018}
}