Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38143
Appears in Collections:Aquaculture Journal Articles
Peer Review Status: Refereed
Title: Comparative analysis of lateral and vertical microfluidic parallelization for high-throughput microdroplet generation
Author(s): Xiang, Lanting
Zou, Yu
Yu, Yuanpeng
Kutluk, Hazal
Moss, Amina
Constantinou, Iordania
Contact Email: amina.moss@stir.ac.uk
Keywords: Droplet breakup
Interfacial dynamics
Flow-focusing microfluidics
Parallelized microfluidic sytems
Capillary number scaling
Flow regime map
Geometric confinement
Scaling laws
Issue Date: Apr-2026
Date Deposited: 8-Jun-2026
Citation: Xiang L, Zou Y, Yu Y, Kutluk H, Moss A & Constantinou I (2026) Comparative analysis of lateral and vertical microfluidic parallelization for high-throughput microdroplet generation. <i>Colloids and Surfaces A: Physicochemical and Engineering Aspects</i>, 743, Art. No.: 140587. https://doi.org/10.1016/j.colsurfa.2026.140587
Abstract: The breakup of confined liquid threads in microfluidic flow-focusing geometries is governed by the interplay between interfacial tension, viscous stresses, and hydrodynamic resistance, which becomes increasingly complex in parallelized systems operated at high throughput. While parallelization is widely used to increase microdroplet generation rates, the role of architecture in regulating droplet breakup dynamics and inter-channel uniformity remains insufficiently understood. Here, we systematically compare microdroplet formation in lateral and vertical parallel flow-focusing architectures using glass microfluidic devices. By constructing flow regime maps and performing quantitative scaling analyses, we show that the two architectures exhibit markedly different droplet breakup behaviors, characterized by distinct scaling exponents for droplet size and generation frequency. These differences reflect geometry-dependent physical mechanisms governing the balance between interfacial tension, shear stress, and flow resistance during droplet formation. Furthermore, we demonstrate that geometric coupling in parallelized flow-focusing systems imposes contrasting constraints on flow redistribution among channels, leading to different limits in microdroplet size uniformity and attainable generation frequency. The lateral architecture supports robust and uniform droplet breakup over a broad operational window, whereas the vertical architecture enables higher-frequency droplet generation but with increased sensitivity to flow imbalance. Together, these results establish a geometry–hydrodynamics framework linking device architecture to droplet breakup regimes and scaling behavior, providing predictive design principles and new fundamental insight into interfacial dynamics in parallelized microfluidic systems.
DOI Link: 10.1016/j.colsurfa.2026.140587
Rights: This is an open access article distributed under the terms of the Creative Commons CC-BY license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. You are not required to obtain permission to reuse this article.
Licence URL(s): http://creativecommons.org/licenses/by/4.0/

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