4.7 Article

The growth and shrinkage of water droplets at the oil-solid interface

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 584, Issue -, Pages 738-748

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2020.09.102

Keywords

Interfacial droplets; Droplet growth; Droplet shrinkage; Oil-solid interface; Viscosity; Osmotic pressure; Chemical potential; Surface speciation; Diffusion

Funding

  1. National Natural Science Foundation of China [21872078]

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This study investigates the formation, growth, and shrinkage of water droplets at immersed oil/solid interfaces, showing that differences in chemical potential control the expansion and contraction of the droplets. Several possible causes are eliminated through careful experiments controlling key parameters.
Hypothesis: The mechanism for the spontaneous formation of water droplets at oil/solid interfaces immersed in water is currently unclear. We hypothesize that growth and shrinkage of droplets are kinetically controlled by diffusion of water through the oil, driven by differences in chemical potential between the solid substrate and the aqueous reservoir. Experiments: The formation, growth and shrinkage of water droplets at an immersed oil/solid interface are investigated theoretically and experimentally with three silicone oils. The surface is hydrophobic and the droplets formed are truncated spheres with radius, a, less than 10 mu m. The expansion and contraction of the droplets can be controlled by adjusting the difference in chemical potential. The growth kinetics are modelled in terms of water migration through the oil layer which predicts a(2) proportional to t. Findings: This is the first study of possible mechanisms for the formation of such interfacial droplets. Several possible causes are shown to be unfavourable, negligible, or are eliminated by careful experiments controlling key parameters (such as oil viscosity, substrate chemistry). The rate constant for mass transport is proportional to difference in chemical potential and an estimate shows dissociation of surface groups on the substrate provides a driving chemical potential of the right magnitude. (C) 2020 Elsevier Inc. All rights reserved.

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