Issue 23, 2011

Active control of nanolitre droplet contents with convective concentration gradients across permeable walls

Abstract

Nanolitre droplets in microfluidic devices can be used to perform thousands of independent chemical and biological experiments while minimizing reagents, cost and time. However, the absence of simple and versatile methods capable of controlling the contents of these nanolitre chemical systems limits their scientific potential. To address this, we have developed a method that is simple to fabricate and can continuously control nanolitre chemical systems by integrating a time-resolved convective flow signal across a permeable membrane wall. With this method, we can independently control the volume and concentration of nanolitre-sized drops without ever directly contacting the fluid. Transport occurring in these systems was also analyzed and thoroughly characterized. We achieved volumetric fluid introduction and removal rates ranging from 0.23 to 4.0 pL s−1. Furthermore, we expanded this method to perform chemical processes. We precipitated silver chloride using a flow signal of sodium chloride and silver nitrate droplets. From there, we were able to separate sodium chloride reactants with a water flow signal, and dissolve silver chloride solids with an ammonia hydroxide flow signal. Finally, we demonstrate the potential to deliver large molecules and perform physical processes like crystallization and particle packing.

Graphical abstract: Active control of nanolitre droplet contents with convective concentration gradients across permeable walls

Supplementary files

Article information

Article type
Paper
Submitted
29 Jun 2011
Accepted
20 Sep 2011
First published
13 Oct 2011

Lab Chip, 2011,11, 4022-4028

Active control of nanolitre droplet contents with convective concentration gradients across permeable walls

R. I. Zeitoun, M. J. Goudie, J. Zwier, D. Mahawilli and M. A. Burns, Lab Chip, 2011, 11, 4022 DOI: 10.1039/C1LC20576E

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