Asynchronous generation of oil droplets using a microfluidic flow focusing system

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作者
Peter Thurgood
Sara Baratchi
Aram Arash
Elena Pirogova
Aaron R. Jex
Khashayar Khoshmanesh
机构
[1] RMIT University,School of Engineering
[2] RMIT University,School of Health and Biomedical Sciences
[3] The Walter and Eliza Hall Institute of Medical Research,Population Health and Immunity Division
[4] The University of Melbourne,Faculty of Veterinary and Agricultural Sciences
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Scientific Reports | / 9卷
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摘要
Here, we show that long-term exposure of PDMS based microfluidic droplet generation systems to water can reverse their characteristics such that they generate oil-in-water droplets instead of water-in-oil droplets. The competition between two oil columns entering via the two side channels leads to asynchronous generation of oil droplets. We identify various modes of droplet generation, and study the size, gap and generation rate of droplets under different combinations of oil and water pressures. Oil droplets can also be generated using syringe pumps, various oil viscosities, and different combinations of immiscible liquids. We also demonstrate the ability to dynamically change the gap between the oil droplets from a few hundred microns to just a few microns in successive cycles using a latex balloon pressure pump. This method requires no special equipment or chemical treatments, and importantly can be reversed by long-term exposure of the PDMS surfaces to the ambient air.
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[1]  
Nunes JK(2013)Dripping and jetting in microfluidic multiphase flows applied to particle and fiber synthesis J. Phys. D Appl. Phys. 46 114002-2509
[2]  
Tsai SS(2015)One-to-one encapsulation based on alternating droplet generation Sci. Rep. 5 2488-3174
[3]  
Wan J(2018)Simple, low-cost fabrication of acrylic based droplet microfluidics and its use to generate DNA-coated particles Sci. Rep. 8 016601-1819
[4]  
Stone HA(2018)A Cosine Similarity Algorithm Method for Fast and Accurate Monitoring of Dynamic Droplet Generation Processes Sci. Rep. 8 3170-1776
[5]  
Hirama H(2018)Droplet microfluidics for the construction of compartmentalised model membranes Lab Chip 18 1814-12
[6]  
Torii T(2012)Droplet based microfluidics Rep. Prog. Phys. 75 1774-373
[7]  
Islam MM(2018)Rapid Patterning of PDMS Microfluidic Device Wettability Using Syringe-Vacuum-Induced Segmented Flow in Nonplanar Geometry ACS Appl. Mater. Interfaces 10 291-32204
[8]  
Loewen A(2010)Hydrophilic PDMS microchannels for high-throughput formation of oil-in-water microdroplets and water-in-oil-in-water double emulsions Lab Chip 10 1-408
[9]  
Allen PB(2010)Patterning microfluidic device wettability using flow confinement Lab Chip 10 368-5551
[10]  
Zhu X(2009)Surface molecular property modifications for poly(dimethylsiloxane) (PDMS) based microfluidic devices Microfluid. Nanofluid. 7 32204-1132