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Dielectrophoretic manipulation of particles on a microfluidics platform with planar tilted electrodes

机译:平面倾斜电极微流体平台上粒子的介电泳操纵

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摘要

Cell/particle separation enabled by lab-on-a-chip (LOC) devices has been a promising solution for separating target cells from the body fluids. Understanding the effects of fabrication and performance parameters on the separation efficiency can further advance applications of such devices in life sciences. This study presents a parametric study on the displacement of the cell-representative polystyrene particles in dielectrophoresis (DEP) based microseparators. The proposed device includes slanted planar interdigitated electrodes to apply a lateral DEP force on the particles. The effect of fabrication parameters (i.e., the channel length and width, and the deflection angle of the electrodes), as well as operational factors (i.e., the volumetric throughput and particle size) on the DEP-induced displacement, are studied. The results show that the volumetric throughput has the most contribution to the position of the particles. Among the geometrical parameters, the channel length is found to be the most effective factor in the particles position, while the effect of the channel width is shown to be negligible. The device was also tested with NIH 3T3 mouse fibroblast cells, which exhibited the same behavior. The results of this research render the desired separation performance to be attained via the design of low-angle slanted electrodes alongside with a balance between the volumetric throughput and the length of the DEP region. These findings lead to a successful size-selective sorting or focusing of 5 μm-15 μm particles, which can provide valuable insights into the design of microfluidic platforms to selectively separate different cell types in biofluids.
机译:通过实验室芯片(LOC)器件使能的电池/颗粒分离是用于将靶细胞与体液分离的有希望的解决方案。了解制造和性能参数对分离效率的影响,可以进一步提前在生命科学中的这种装置的应用。该研究提出了对基于电泳(DEP)微量粒子(DEP)的微氨基中的细胞代表性聚苯乙烯颗粒的位移的参数研究。所提出的装置包括倾斜的平面互指电极,以在颗粒上施加横向的DEP力。制造参数(即通道长度和宽度以及电极的偏转角的影响,以及DEP诱导位移的操作因子(即容积通过量和粒度)。结果表明,体积吞吐量对颗粒的位置具有最大贡献。在几何参数中,发现沟道长度是粒子位置中最有效的因子,而沟道宽度的效果被认为可以忽略不计。该装置还用NIH 3T3小鼠成纤维细胞进行测试,其表现出相同的行为。该研究的结果使得通过设计的低角度倾斜电极的设计以及在体积通量和DEP区域的长度之间的平衡来实现所需的分离性能。这些发现导致成功的尺寸选择性分选或聚焦5μm-15μm颗粒,其可以为微流体平台设计提供有价值的见解,以在生物流体中选择性地分离不同的细胞类型。

著录项

  • 来源
    《Sensors and Actuators》 |2021年第2期|129204.1-129204.10|共10页
  • 作者单位

    School of Engineering Faculty of Applied Science The University of British Columbia Kelowna BC V1V 1V7 Canada;

    Department of Bioengineering University of California 410 Westwood Plaza Los Angeles CA 90095 USA;

    School of Engineering Faculty of Applied Science The University of British Columbia Kelowna BC V1V 1V7 Canada;

    School of Engineering Faculty of Applied Science The University of British Columbia Kelowna BC V1V 1V7 Canada;

    School of Engineering Faculty of Applied Science The University of British Columbia Kelowna BC V1V 1V7 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dielectrophoresis; Cell/particle manipulation; Separation; Microfluidics; Lab on a chip;

    机译:介电电泳;细胞/粒子操纵;分离;微流体;芯片上的实验室;

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