Collective diffusion coefficient of a charged colloidal dispersion: interferometric measurements in a drying drop
Abstract
In the present work, we use Mach-Zehnder interferometry to thoroughly investigate the drying dynamics of a 2D confined drop of a charged colloidal dispersion. This technique makes it possible to measure the colloid concentration field during the drying of the drop at a high accuracy (about 0.5%) and with a high temporal and spatial resolution (about 1 frame/s and 5 m/pixel). These features allow us to probe mass transport of the charged dispersion in this out-of-equilibrium situation. In particular, our experiments provide the evidence that mass transport within the drop can be described by a purely diffusive process for some range of parameters for which the buoyancy-driven convection is negligible. We are then able to extract from these experiments the collective diffusion coefficient of the dispersion over a wide concentration range -, i.e. from the liquid dispersed state to the solid glass regime, with a high accuracy. The measured values of - are significantly larger than the simple estimate given by the Stokes-Einstein relation, thus highlighting the important role played by the colloidal interactions in such dispersions.
Cite
@article{arxiv.2008.04154,
title = {Collective diffusion coefficient of a charged colloidal dispersion: interferometric measurements in a drying drop},
author = {Benjamin Sobac and Sam Dehaeck and Anne Bouchaudy and Jean-Baptiste Salmon},
journal= {arXiv preprint arXiv:2008.04154},
year = {2020}
}