Electro-coalescence of heterogeneous paired-droplets under AC electric field

Zhi Tao , Weidong Fang , Haiwang Li , Shuai Yin , Tiantong Xu , Teckneng Wong , Yi Huang

Droplet ›› 2024, Vol. 3 ›› Issue (4) : e145

PDF
Droplet ›› 2024, Vol. 3 ›› Issue (4) : e145 DOI: 10.1002/dro2.145
RESEARCH ARTICLE

Electro-coalescence of heterogeneous paired-droplets under AC electric field

Author information +
History +
PDF

Abstract

Controllable droplet coalescence exhibits unique advantages and intriguing prospect in chemical synthesis and biological engineering. Current researches focusing on the droplets of the same physics are, however, limited in terms of the interaction between different reactants. In this work, the electro-coalescence of heterogeneous paired-droplets is investigated in a microfluidic chip controlled by an AC electric field. The characteristics of merging dynamics are analyzed under different electric conditions and fluid properties, and an on-chip cross-linking reaction is conducted to enable the instantaneous production of hydrogel microspheres. We find that the coalescence of heterogeneous paired-droplets expands the range of start positions and prolongs the merging time compared to homogeneous paired-droplets. The evolution process of interfaces is accelerated with the increasing voltage, which contributes to the mixing of diverse components. Different electrical conductivities lead to distinct internal mechanisms within droplets. The voltage across the droplet is reduced with the increasing conductivity, while the enhanced attraction between free charges plays a complimentary role in interface instability. Lowering the surface tension reduced the required electric conditions for coalescence. Endowed with the non-Newtonian property, the droplet presents a non-linear relationship in the coalescence region, triggering coalescence with filaments at low voltages and showcasing superior performance at high frequencies. Based on above findings, we successfully produce alginate hydrogel microspheres with a wide range of concentrations in high monodispersity, achieving a clean fabrication of pure hydrogel without any additives and no need for subsequent cleaning. These results reveal the electro-hydrodynamics of heterogeneous paired-droplets, promoting the development of droplet coalescence in chemical and material science.

Cite this article

Download citation ▾
Zhi Tao, Weidong Fang, Haiwang Li, Shuai Yin, Tiantong Xu, Teckneng Wong, Yi Huang. Electro-coalescence of heterogeneous paired-droplets under AC electric field. Droplet, 2024, 3(4): e145 DOI:10.1002/dro2.145

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Whelpdale DM, List R. The coalescence process in raindrop growth. J Geophys. 1971;76:2836-2856.

[2]

Christopher GF, Bergstein J, End NB, Poon M, Nguyen C, Anna SL. Coalescence and splitting of confined droplets at microfluidic junctions. Lab Chip. 2009;9:1102-1109.

[3]

Ding Y, Howes PD, de Mello AJ. Recent advances in droplet microfluidics. Anal Chem. 2020;92:132-149.

[4]

Zhu P, Wang L. Passive and active droplet generation with microfluidics: a review. Lab Chip. 2017;17:34-75.

[5]

Chen J-D. A model of coalescence between two equal-sized spherical drops or bubbles. J Colloid Interface Sci. 1985;107:209-220.

[6]

Duchemin L, Eggers J, Josserand C. Inviscid coalescence of drops. J Fluid Mech. 2003;487:167-178.

[7]

Paik P, Pamula VK, Fair RB. Rapid droplet mixers for digital microfluidic systems. Lab Chip. 2003;3:253-259.

[8]

Yan J, Bauer W-AC, Fischlechner M, Hollfelder F, Kaminski CF, Huck WTS. Monodisperse water-in-oil-in-water (W/O/W) double emulsion droplets as uniform compartments for high-throughput analysis via flow cytometry. Micromachines. 2013;4:402-413.

[9]

Yi H, Wan Y, Zhang Y, Wang Y, Fei W, Luo G. Controllable preparation of highly uniform γ-alumina microspheres via the sol–gel route for alkoxide in a coaxial microchannel. J Sol-Gel Sci Technol. 2020;93:391-401.

[10]

Mazutis L, Griffiths AD. Selective droplet coalescence using microfluidic systems. Lab Chip. 2012;12:1800-1806.

[11]

Hack MA, Vondeling P, Cornelissen M, et al. Asymmetric coalescence of two droplets with different surface tensions is caused by capillary waves. Phys Rev Fluids. 2021;6:104002.

[12]

Que Y, Tian S, Li M, Dai X. The coalescence behavior of water and ethanol droplets: a molecular dynamic study. Mod Phys Lett B. 2020;34:2050280.

[13]

Li J, Mooney DJ. Designing hydrogels for controlled drug delivery. Nat Rev Mater. 2016;1:16071.

[14]

Zhong R, Talebian S, Mendes BB, et al. Hydrogels for RNA delivery. Nat Mater. 2023;22:818-831.

[15]

Borisov SM, Wolfbeis OS. Optical biosensors. Chem Rev. 2008;108:423-461.

[16]

Choi C-H, Jung J-H, Rhee YW, Kim D-P, Shim S-E, Lee C-S. Generation of monodisperse alginate microbeads and in situ encapsulation of cell in microfluidic device. Biomed Microdevices. 2007;9:855-862.

[17]

Utech S, Prodanovic R, Mao AS, Ostafe R, Mooney DJ, Weitz DA. Microfluidic generation of monodisperse, structurally homogeneous alginate microgels for cell encapsulation and 3D cell culture. Adv Healthcare Mater. 2015;4:1628-1633.

[18]

Håti AG, Bassett DC, Ribe JM, Sikorski P, Weitz DA, Stokke BT. Versatile, cell and chip friendly method to gel alginate in microfluidic devices. Lab Chip. 2016;16:3718-3727.

[19]

Fang W, Tao Z, Li H, et al. AC-electric-field-controlled multi-component droplet coalescence at microscale. Lab Chip. 2023;23:2341-2355.

[20]

Humphry KJ, Kulkarni PM, Weitz DA, Morris JF, Stone HA. Axial and lateral particle ordering in finite Reynolds number channel flows. Phys Fluids. 2010;22:081703.

[21]

Mandal S, Chaudhury K, Chakraborty S. Transient dynamics of confined liquid drops in a uniform electric field. Phys Rev E. 2014;89:053020.

[22]

Huang Y, Wang YL, Wong TN. AC electric field controlled non-Newtonian filament thinning and droplet formation on the microscale. Lab Chip. 2017;17:2969-2981.

[23]

Xu S, Nie Z, Seo M, et al. Generation of monodisperse particles by using microfluidics: control over size, shape, and composition. Angew Chem Int Ed. 2005;44:724-728.

[24]

Zhang H, Tumarkin E, Peerani R, et al. Microfluidic production of biopolymer microcapsules with controlled morphology. J Am Chem Soc. 2006;128:12205-12210.

RIGHTS & PERMISSIONS

2024 The Author(s). Droplet published by Jilin University and John Wiley & Sons Australia, Ltd.

AI Summary AI Mindmap
PDF

214

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/