Literature DB >> 24187531

Enhanced size-dependent trapping of particles using microvortices.

Jian Zhou1, Susan Kasper, Ian Papautsky.   

Abstract

Inertial microfluidics has been attracting considerable interest for size-based separation of particles and cells. The inertial forces can be manipulated by expanding the microchannel geometry, leading to formation of microvortices which selectively isolate and trap particles or cells from a mixture. In this work, we aim to enhance our understanding of particle trapping in such microvortices by developing a model of selective particle trapping. Design and operational parameters including flow conditions, size of the trapping region, and target particle concentration are explored to elucidate their influence on trapping behavior. Our results show that the size dependence of trapping is characterized by a threshold Reynolds number, which governs the selective entry of particles into microvortices from the main flow. We show that concentration enhancement on the order of 100,000× and isolation of targets at concentrations in the 1/mL is possible. Ultimately, the insights gained from our systematic investigation suggest optimization solutions that enhance device performance (efficiency, size selectivity, and yield) and are applicable to selective isolation and trapping of large rare cells as well as other applications.

Entities:  

Year:  2013        PMID: 24187531      PMCID: PMC3810988          DOI: 10.1007/s10404-013-1176-y

Source DB:  PubMed          Journal:  Microfluid Nanofluidics        ISSN: 1613-4982            Impact factor:   2.529


  34 in total

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  12 in total

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9.  Particle Shape Influences Settling and Sorting Behavior in Microfluidic Domains.

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10.  Dean Flow Dynamics in Low-Aspect Ratio Spiral Microchannels.

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