Microfluidic Droplet-Generation Device with Flexible Walls.
co-flow method
droplet-size control
flexible walls
microfluidics droplet generation
Journal
Micromachines
ISSN: 2072-666X
Titre abrégé: Micromachines (Basel)
Pays: Switzerland
ID NLM: 101640903
Informations de publication
Date de publication:
15 Sep 2023
15 Sep 2023
Historique:
received:
26
07
2023
revised:
29
08
2023
accepted:
11
09
2023
medline:
28
9
2023
pubmed:
28
9
2023
entrez:
28
9
2023
Statut:
epublish
Résumé
Controlling droplet sizes is one of the most important aspects of droplet generators used in biomedical research, drug discovery, high-throughput screening, and emulsion manufacturing applications. This is usually achieved by using multiple devices that are restricted in their range of generated droplet sizes. In this paper, a co-flow microfluidic droplet-generation device with flexible walls was developed such that the width of the continuous (C)-phase channel around the dispersed (D)-phase droplet-generating needle can be adjusted on demand. This actuation mechanism allowed for the adjustment of the C-phase flow velocity, hence providing modulated viscous forces to manipulate droplet sizes in a single device. Two distinct droplet-generation regimes were observed at low D-phase Weber numbers, i.e., a dripping regime at high- and medium-channel widths and a plug regime at low-channel widths. The effect of channel width on droplet size was investigated in the dripping regime under three modes of constant C-phase flow rate, velocity, and Capillary number. Reducing the channel width at a constant C-phase flow rate had the most pronounced effect on producing smaller droplets. This effect can be attributed to the combined influences of the wall effect and increased C-phase velocity, leading to a greater impact on droplet size due to the intensified viscous force. Droplet sizes in the range of 175-913 µm were generated; this range was ~2.5 times wider than the state of the art, notably using a single microfluidic device. Lastly, an empirical model based on Buckingham's Pi theorem was developed to predict the size of droplets based on channel width and height as well as the C-phase Capillary and Reynolds numbers.
Identifiants
pubmed: 37763933
pii: mi14091770
doi: 10.3390/mi14091770
pmc: PMC10536617
pii:
doi:
Types de publication
Journal Article
Langues
eng
Subventions
Organisme : European Space Agency
ID : WHISKY MAP
Organisme : Natural Sciences and Engineering Research Council
ID : DG
Références
Science. 2005 Apr 22;308(5721):537-41
pubmed: 15845850
Lab Chip. 2010 Aug 21;10(16):2032-45
pubmed: 20559601
Lab Chip. 2017 Oct 11;17(20):3504-3513
pubmed: 28933795
Lab Chip. 2006 Mar;6(3):437-46
pubmed: 16511628
Biomicrofluidics. 2018 Jun 18;12(3):034113
pubmed: 29983838
Electrophoresis. 2005 Oct;26(19):3716-24
pubmed: 16196106
Lab Chip. 2017 Sep 12;17(18):3168-3175
pubmed: 28812769
Phys Rev Lett. 2007 Aug 31;99(9):094502
pubmed: 17931011
Ultrasound Med Biol. 2015 Mar;41(3):814-31
pubmed: 25619781
Langmuir. 2004 Nov 9;20(23):9905-8
pubmed: 15518471
Chem Rev. 2017 Jun 28;117(12):7964-8040
pubmed: 28537383
Phys Rev Lett. 2003 Apr 11;90(14):144505
pubmed: 12731923
Lab Chip. 2014 Oct 21;14(20):4076-84
pubmed: 25177916
Angew Chem Int Ed Engl. 2006 Nov 13;45(44):7336-56
pubmed: 17086584
Langmuir. 2011 Jul 19;27(14):9034-42
pubmed: 21082804
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Jul;80(1 Pt 2):015301
pubmed: 19658759
Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Sep;78(3 Pt 2):036317
pubmed: 18851153
Lab Chip. 2015 Jan 21;15(2):417-28
pubmed: 25367757
Soft Matter. 2005 May 27;1(1):23-27
pubmed: 32646073
Langmuir. 2014 Nov 25;30(46):13765-70
pubmed: 25340527
Phys Rev Lett. 2001 Apr 30;86(18):4163-6
pubmed: 11328121
Rep Prog Phys. 2012 Jan;75(1):016601
pubmed: 22790308
Phys Rev Lett. 2008 Jan 11;100(1):014502
pubmed: 18232775
J Colloid Interface Sci. 2001 May 15;237(2):239-248
pubmed: 11334539
Phys Rev Lett. 2007 Sep 7;99(10):104502
pubmed: 17930390
Int J Pharm. 2014 Sep 10;472(1-2):82-7
pubmed: 24928131
Lab Chip. 2014 Mar 21;14(6):1083-6
pubmed: 24469311
Soft Matter. 2018 Dec 12;14(48):9870-9876
pubmed: 30474087
Molecules. 2020 Nov 17;25(22):
pubmed: 33212771