Evaporation-triggered Wetting Transition for Water Droplets upon Hydrophobic Microstructures
Abstract
When placed on rough hydrophobic surfaces, water droplets of diameter larger than a few millimeters can easily form pearls, as they are in the Cassie-Baxter state with air pockets trapped underneath the droplet. Intriguingly, a natural evaporating process can drive such a Fakir drop into a completely wetting (Wenzel) state. Our microscopic observations with simultaneous side and bottom views of evaporating droplets upon transparent hydrophobic microstructures elucidate the water-filling dynamics and the mechanism of this evaporation-triggered transition. For the present material the wetting transition occurs when the water droplet size decreases to a few hundreds of micrometers in radius. We present a general global energy argument which estimates the interfacial energies depending on the drop size and can account for the critical radius for the transition.
Cite
@article{arxiv.0909.5041,
title = {Evaporation-triggered Wetting Transition for Water Droplets upon Hydrophobic Microstructures},
author = {Peichun Tsai and Rob G. H. Lammertink and Matthias Wessling and Detlef Lohse},
journal= {arXiv preprint arXiv:0909.5041},
year = {2010}
}
Comments
4 pages, 6 figures