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Open AccessJournal ArticleDOI

Hydrodynamic self-focusing in a parallel microfluidic device through cross-filtration

TLDR
A novel parallelized microfluidic device that enables hydrodynamic focusing in each microchannel using a single feed flow and, since only one inlet is needed, multiple parallel micro-channels can be easily introduced into the design.
Abstract
The flow focusing is a fundamental prior step in order to sort, analyze, and detect particles or cells. The standard hydrodynamic approach requires two fluids to be injected into the microfluidic device: one containing the sample and the other one, called the sheath fluid, allows squeezing the sample fluid into a narrow stream. The major drawback of this approach is the high complexity of the layout for microfluidic devices when parallel streams are required. In this work, we present a novel parallelized microfluidic device that enables hydrodynamic focusing in each microchannel using a single feed flow. At each of the parallel channels, a cross-filter region is present that allows removing fluid from the sample fluid. This fluid is used to create local sheath fluids that hydrodynamically pinch the sample fluid. The great advantage of the proposed device is that, since only one inlet is needed, multiple parallel micro-channels can be easily introduced into the design. In the paper, the design method is described and the numerical simulations performed to define the optimal design are summarized. Moreover, the operational functionality of devices tested by using both polystyrene beads and Acute Lymphoid Leukemia cells are shown.

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Citations
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Journal ArticleDOI

High-throughput and clogging-free microfluidic filtration platform for on-chip cell separation from undiluted whole blood

TL;DR: A high-throughput, clogging-free, and highly integrated platform, which features with an integrated bidirectional micropump and commercially available polycarbonate microporous membranes, which holds great promise for point-of-care blood pretreatment, analysis, and diagnosis applications.
Journal ArticleDOI

Single-layer microfluidic device to realize hydrodynamic 3D flow focusing.

TL;DR: A method of flow focusing that uses a sheath fluid to enclose the sample in a single layer of PDMS, and that possesses applicability for a wide range of sample flow rates, is reported.
Journal ArticleDOI

Microfluidic technology for cell hydrodynamic manipulation

TL;DR: In this paper, the physics of relevant hydrodynamic effects in microfluidics, and how they are exploited for cell manipulation are discussed, and a simplification in the design and fabrication phase is discussed.
Journal ArticleDOI

Flow induced particle separation and collection through linear array pillar microfluidics device

TL;DR: A linear combination of obstructions is introduced to provide size contrast-based particle separation to provide semiquantification obtained by comparison of the initial particle concentration to captured-particle occupancy in a microfiltration channel.
Journal ArticleDOI

Microfluidic In-Flow Decantation Technique Using Stepped Pillar Arrays and Hydraulic Resistance Tuners.

TL;DR: A microfluidic in-flow decantation technique that provides the separation of particles from particle-free fluid while in- flow and the avenues to improve the yield are discussed along with several potential applications.
References
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Journal ArticleDOI

The present and future role of microfluidics in biomedical research

TL;DR: The progress made by lab-on-a-chip microtechnologies in recent years is analyzed, and the clinical and research areas in which they have made the greatest impact are discussed.
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Microfluidic lab-on-a-chip platforms: requirements, characteristics and applications

TL;DR: This critical review summarizes developments in microfluidic platforms that enable the miniaturization, integration, automation and parallelization of (bio-)chemical assays and attempts to provide a selection scheme based on key requirements of different applications and market segments.
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Continuous inertial focusing, ordering, and separation of particles in microchannels

TL;DR: The ability to differentially order particles of different sizes, continuously, at high rates, and without external forces in microchannels is expected to have a broad range of applications in continuous bioparticle separation, high-throughput cytometry, and large-scale filtration systems.
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Continuous Particle Separation Through Deterministic Lateral Displacement

TL;DR: A microfluidic particle-separation device that makes use of the asymmetric bifurcation of laminar flow around obstacles, which was better than the time and resolution of conventional flow techniques.
Journal ArticleDOI

Twenty years of particle image velocimetry

TL;DR: The development of the method of particle image velocimetry (PIV) is traced by describing some of the milestones that have enabled new and/or better measurements to be made.
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