Issue 13, 2023

Characterisation of hydrodynamic trapping in microfluidic cross-slot devices for high strain rate applications

Abstract

Hydrodynamic trapping of a particle or cluster of particles based on contact and non-contact approaches has brought prominent insights to micro-nano scale applications. Of the non-contact methods, image-based real-time control in cross-slot microfluidic devices is one of the most promising potential platform for single cellular assays. Here, we report results from experiments conducted in two cross-slot microfluidic channels of different widths, with varying real-time delay of the control algorithm and different magnification. Sustained trapping of 5 μm diameter particles was achieved with high strain rates, of order 102 s−1, higher than in any previous studies. Our experiments show that the maximum attainable strain rate is a function of the real-time delay of the control algorithm and the particle resolution (pixel/μm). Therefore, we anticipate that with further reduced time delays and enhanced particle resolution, considerably higher strain rates can be attained, opening the platform to single cellular assay studies where very high strain rates are required.

Graphical abstract: Characterisation of hydrodynamic trapping in microfluidic cross-slot devices for high strain rate applications

Supplementary files

Article information

Article type
Paper
Submitted
27 Mar 2023
Accepted
02 Jun 2023
First published
05 Jun 2023

Lab Chip, 2023,23, 3092-3105

Characterisation of hydrodynamic trapping in microfluidic cross-slot devices for high strain rate applications

A. George, F. Akbaridoust, N. A. Zainal Abidin, W. S. Nesbitt and I. Marusic, Lab Chip, 2023, 23, 3092 DOI: 10.1039/D3LC00256J

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