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Updated: Aug 28, 2026

Fluorescence detection methods for microfluidic droplet platforms
Published on: December 10, 2011
Corona-Driven Microdroplet Coalescence on an Open Oil Film with Intelligent Detection and Tracking
Xinyi Qiu1, Xiaxia Cui1,2, Yiqing Liu1
1School of Artificial Intelligence, Anhui University of Science and Technology, Huainan 232000, China.
Abstract:
Open-surface coalescence of microdroplets is essential for droplet-based microreactors, emulsion processing, and multiphase microfluidics, yet existing methods often require closed channels or patterned electrodes. Here, we report a corona-driven open-oil-film platform that achieves voltage-regulated coalescence of aqueous microdroplets in a simple needle-plate electrode configuration. Positive corona discharge induces coupled electrohydrodynamic effects-including ion transport, interfacial charge redistribution, and Maxwell stresses-that drive oil-film contraction and charge-regulated droplet bouncing, thereby reducing inter-droplet spacing and promoting successive merging. The coalescence rate and final droplet size are tunable via the applied voltage and oil volume: complete coalescence into a single droplet is achieved at 12 kV, and an optimal oil volume of 60 μL maximizes confinement efficiency. To enable quantitative, frame-by-frame analysis, we develop an improved YOLOv5-OC-SORT framework that yields an overall mAP@0.5 of 0.905 for automatic droplet detection and tracking. As a proof-of-concept, the platform achieves electro-demulsification of a surfactant-stabilized water-in-oil emulsion, increasing the average droplet diameter from ~0.005 mm to ~0.2 mm and enabling effective oil-water separation. This work provides a simple, electrode-pattern-free strategy for controllable droplet coalescence and open-surface emulsion breaking.

