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High-Throughput Particle Concentration Using Complex Cross-Section Microchannels

Authors :
Asma Mihandoust
Sajad Razavi Bazaz
Nahid Maleki-Jirsaraei
Majid Alizadeh
Robert A. Taylor
Majid Ebrahimi Warkiani
Source :
Micromachines, Vol 11, Iss 4, p 440 (2020)
Publication Year :
2020
Publisher :
MDPI AG, 2020.

Abstract

High throughput particle/cell concentration is crucial for a wide variety of biomedical, clinical, and environmental applications. In this work, we have proposed a passive spiral microfluidic concentrator with a complex cross-sectional shape, i.e., a combination of rectangle and trapezoid, for high separation efficiency and a confinement ratio less than 0.07. Particle focusing in our microfluidic system was observed in a single, tight focusing line, in which higher particle concentration is possible, as compared with simple rectangular or trapezoidal cross-sections with similar flow area. The sharper focusing stems from the confinement of Dean vortices in the trapezoidal region of the complex cross-section. To quantify this effect, we introduce a new parameter, complex focusing number or CFN, which is indicative of the enhancement of inertial focusing of particles in these channels. Three spiral microchannels with various widths of 400 µm, 500 µm, and 600 µm, with the corresponding CFNs of 4.3, 4.5, and 6, respectively, were used. The device with the total width of 600 µm was shown to have a separation efficiency of ~98%, and by recirculating, the output concentration of the sample was 500 times higher than the initial input. Finally, the investigation of results showed that the magnitude of CFN relies entirely on the microchannel geometry, and it is independent of the overall width of the channel cross-section. We envision that this concept of particle focusing through complex cross-sections will prove useful in paving the way towards more efficient inertial microfluidic devices.

Details

Language :
English
ISSN :
11040440 and 2072666X
Volume :
11
Issue :
4
Database :
Directory of Open Access Journals
Journal :
Micromachines
Publication Type :
Academic Journal
Accession number :
edsdoj.8206ee4a0a04e5bbf091fbcc6f23ac0
Document Type :
article
Full Text :
https://doi.org/10.3390/mi11040440