Gradient dynamics approach to reactive thin-film hydrodynamics

Voss, Florian; Thiele, Uwe

Research article (journal) | Peer reviewed

Abstract

Wetting and dewetting dynamics of simple and complex liquids is described by kinetic equations in gradient dynamics form that incorporates the various coupled dissipative processes in a fully thermodynamically consistent manner. After briefly reviewing this, we also review how chemical reactions can be captured by a related gradient dynamics description, assuming detailed balanced mass action type kinetics. Then, we bring both aspects together and discuss mesoscopic reactive thin-film hydrodynamics illustrated by two examples, namely, models for reactive wetting and reactive surfactants. These models can describe the approach to equilibrium but may also be employed to study out-of-equilibrium chemo-mechanical dynamics. In the latter case, one breaks the gradient dynamics form by chemostatting to obtain active systems. In this way, for reactive wetting we recover running drops that are driven by chemically sustained wettability gradients and for drops covered by autocatalytic reactive surfactants we find complex forms of self-propulsion and self-excited oscillations.

Details about the publication

JournalJournal of Engineering Mathematics
Volume149
Article number2
StatusPublished
Release year2024 (24/10/2024)
Language in which the publication is writtenEnglish
DOI10.1007/s10665-024-10402-x
KeywordsChemo-mechanical coupling; Gradient dynamics; Reactive surfactants; Reactive thin-film hydrodynamics; Reactive wetting; Self-propelled drops

Authors from the University of Münster

Thiele, Uwe
Professur für Theoretische Physik (Prof. Thiele)
Center for Nonlinear Science
Center for Multiscale Theory and Computation
Voß, Florian Alexander
Professur für Theoretische Physik (Prof. Thiele)