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  • Simple, cost-effective, and continuous 3D dielectrophoretic microchip for concentration and separation of bioparticles

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    Nguyen222117.pdf (711.2Kb)
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    Accepted Manuscript (AM)
    Author(s)
    Tajik, Parham
    Saidi, Mohammad Said
    Kashaninejad, Navid
    Nguyen, Nam-Trung
    Griffith University Author(s)
    Nguyen, Nam-Trung
    Kashaninejad, Navid
    Year published
    2020
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    Abstract
    Dielectrophoresis is a robust approach for manipulating bioparticles in microfluidic devices. In recent years, many groups have developed dielectrophoresis-based microfluidic systems for separation and concentration of various types of bioparticles, where the gradient of the electric field causes dielectrophoresis force acting on the suspended particles. Enhancing the gradient of the electric field with three-dimensional (3D) electrodes can significantly improve the efficiency of the system. Implementing planar electrodes in a 3D arrangement is a simple option to form a 3D-electrode configuration. This paper reports the ...
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    Dielectrophoresis is a robust approach for manipulating bioparticles in microfluidic devices. In recent years, many groups have developed dielectrophoresis-based microfluidic systems for separation and concentration of various types of bioparticles, where the gradient of the electric field causes dielectrophoresis force acting on the suspended particles. Enhancing the gradient of the electric field with three-dimensional (3D) electrodes can significantly improve the efficiency of the system. Implementing planar electrodes in a 3D arrangement is a simple option to form a 3D-electrode configuration. This paper reports the development of a novel dielectrophoretic microfluidic system for continuously manipulating microparticles such as polystyrene microbeads and Saccharomyces cerevisiae cells. The fabrication process was relatively simple, cost-effective, and precise. Moreover, the device was tested to find the impact of various parameters on the concentration of polystyrene microbeads and separation of live and dead cells. The optimum working conditions, including flow rate, applied voltage amplitude, and frequency, were obtained accordingly. Furthermore, the experimentally observed trajectories of the particles agreed well with simulated counterparts. The device was able to efficiently and continuously perform with high throughput. Under an optimum condition, an efficiency of approximately 100% was obtained, confirming the capability of the proposed design with four triangular electrodes for continuous focusing and separation of live and dead cells as well as polystyrene particles.
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    Journal Title
    Industrial and Engineering Chemistry Research
    DOI
    https://doi.org/10.1021/acs.iecr.9b00771
    Copyright Statement
    This document is the Accepted Manuscript version of a Published Work that appeared in final form in Industrial & Engineering Chemistry Research, copyright 2019 American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see 10.1021/acs.iecr.9b00771
    Note
    This publication has been entered into Griffith Research Online as an Advanced Online Version.
    Subject
    Chemical sciences
    Engineering
    Publication URI
    http://hdl.handle.net/10072/386413
    Collection
    • Journal articles

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