On-chip background dilution in droplets with high particle recovery using acoustophoresis
Author(s) -
Zhenhua Liu,
Anna Fornell,
Laurent Barbe,
Klas Hjort,
Maria Tenje
Publication year - 2019
Publication title -
biomicrofluidics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.634
H-Index - 63
ISSN - 1932-1058
DOI - 10.1063/1.5129256
Subject(s) - microfluidics , dilution , particle (ecology) , polystyrene , lab on a chip , nanotechnology , fluorescence , signal (programming language) , materials science , chemistry , analytical chemistry (journal) , chromatography , physics , polymer , optics , thermodynamics , composite material , computer science , oceanography , geology , programming language
Droplet microfluidics has shown great potential for on-chip biological and chemical assays. However, fluid exchange in droplet microfluidics with high particle recovery is still a major bottleneck. Here, using acoustophoresis, we present for the first time a label-free method to achieve continuous background dilution in droplets containing cells with high sample recovery. The system comprises droplet generation, acoustic focusing, droplet splitting, picoinjection, and serpentine mixing on the same chip. The capacities of the picoinjection and the droplet split to dilute the background fluorescent signal in the droplets have been characterized. The sample recovery at different droplet split ratios has also been characterized. The results show a maximum of 4.3-fold background dilution with 87.7% particle recovery. We also demonstrated that the system can be used to dilute background fluorescent signal in droplets containing either polystyrene particles or endothelial cells.
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