Opposed flow focusing: evidence of a second order jetting transition
Abstract
We propose a novel microfluidic "opposed-flow" geometry in which the continuous fluid phase is fed into a junction in a direction opposite the dispersed phase. This pulls out the dispersed phase into a micron-sized jet, which decays into micron-sized droplets. As the driving pressure is tuned to a critical value, the jet radius vanishes as a power law down to sizes below 1 m. By contrast, the conventional "coflowing" junction leads to a first order jetting transition, in which the jet disappears at a finite radius of several m, to give way to a "dripping" state, resulting in much larger droplets. We demonstrate the effectiveness of our method by producing the first microfluidic silicone oil emulsions with a sub micron particle radius, and utilize these droplets to produce colloidal clusters.
Keywords
Cite
@article{arxiv.1804.01471,
title = {Opposed flow focusing: evidence of a second order jetting transition},
author = {Jun Dong and Max Meissner and Jens Eggers and Annela M. Seddon and C. Patrick Royall},
journal= {arXiv preprint arXiv:1804.01471},
year = {2018}
}