Published July 1, 2009 | Version v1
Journal article

Modelling approaches to the dewetting of evaporating thin films of nanoparticle suspensions

  • 1. Department of Mathematical Sciences, Loughborough University, Leicestershire LE11 3TU (United Kingdom)
  • 2. School of Physics and Astronomy, University of Nottingham, Nottingham NG7 2RD (United Kingdom)

Description

We review recent experiments on dewetting thin films of evaporating colloidal nanoparticle suspensions (nanofluids) and discuss several theoretical approaches to describe the ongoing processes including coupled transport and phase changes. These approaches range from microscopic discrete stochastic theories to mesoscopic continuous deterministic descriptions. In particular, we describe (i) a microscopic kinetic Monte Carlo model, (ii) a dynamical density functional theory and (iii) a hydrodynamic thin film model. Models (i) and (ii) are employed to discuss the formation of polygonal networks, spinodal and branched structures resulting from the dewetting of an ultrathin 'postcursor film' that remains behind a mesoscopic dewetting front. We highlight, in particular, the presence of a transverse instability in the evaporative dewetting front, which results in highly branched fingering structures. The subtle interplay of decomposition in the film and contact line motion is discussed. Finally, we discuss a simple thin film model (iii) of the hydrodynamics on the mesoscale. We employ coupled evolution equations for the film thickness profile and mean particle concentration. The model is used to discuss the self-pinning and depinning of a contact line related to the 'coffee-stain' effect. In the course of the review we discuss the advantages and limitations of the different theories, as well as possible future developments and extensions.

Availability note (English)

Available from http://dx.doi.org/10.1088/0953-8984/21/26/264016

Additional details

Identifiers

DOI
10.1088/0953-8984/21/26/264016;
PII
S0953-8984(09)05719-1;

Publishing Information

Journal Title
Journal of Physics. Condensed Matter
Journal Volume
21
Journal Issue
26
Journal Page Range
[13 p.]
ISSN
0953-8984
CODEN
JCOMEL

INIS