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Dielectrophoresis of Micro/Nano Particles Using Curved Microelectrodes

机译:微/纳米粒子介电电泳的弯曲微电极

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摘要

Dielectrophoresis, the induced motion of polarisable particles in non-homogenous electric field, has been proven as a versatile mechanism to transport, immobilise, sort and characterise microano scale particle in microfluidic platforms. The performance of dielectrophoretic (DEP) systems depend on two parameters: the configuration of microelectrodes designed to produce the DEP force and the operating strategies devised to employ this force in such processes. This work summarises the unique features of curved microelectrodes for the DEP manipulation of target particles in microfluidic systems. The curved microelectrodes demonstrate exceptional capabilities including (i) creating strong electric fields over a large portion of their structure, (ii) minimising electro-thermal vortices and undesired disturbances at their tips, (iii) covering the entire width of the microchannel influencing all passing particles, and (iv) providing a large trapping area at their entrance region, as evidenced by extensive numerical and experimental analyses. These microelectrodes have been successfully applied for a variety of engineering and biomedical applications including (i) sorting and trapping model polystyrene particles based on their dimensions, (ii) patterning carbon nanotubes to trap low-conductive particles, (iii) sorting live and dead cells based on their dielectric properties, (iv) real-time analysis of drug-induced cell death, and (v) interfacing tumour cells with environmental scanning electron microscopy to study their morphological properties. The DEP systems based on curved microelectrodes have a great potential to be integrated with the future lab-on-a-chip systems.
机译:介电电泳是可极化粒子在非均匀电场中的诱导运动,已被证明是一种在微流体平台上传输,固定,分类和表征微/纳米级粒子的通用机制。介电电泳(DEP)系统的性能取决于两个参数:设计为产生DEP力的微电极的配置以及设计用于在此类过程中使用该力的操作策略。这项工作总结了用于微流体系统中目标粒子的DEP操纵的弯曲微电极的独特功能。弯曲的微电极具有出色的功能,其中包括(i)在其结构的大部分区域上产生强电场,(ii)最小化电热涡流和尖端的不希望有的干扰,(iii)覆盖影响所有通过的微通道的整个宽度大量的数值和实验分析证明,(iv)在其入口区域提供了较大的捕集面积。这些微电极已成功应用于各种工程和生物医学应用,包括(i)根据其尺寸分选和捕集模型聚苯乙烯颗粒;(ii)对碳纳米管进行构图以捕集低导电性颗粒;(iii)分选活细胞和死细胞基于它们的介电特性,(iv)实时分析药物诱导的细胞死亡,以及(v)用环境扫描电子显微镜观察肿瘤细胞的形态特性。基于弯曲微电极的DEP系统具有与未来的芯片实验室系统集成的巨大潜力。

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  • 来源
    《Smart nano-micro materials and devices》|2011年|p.82040G.1-82040G.9|共9页
  • 会议地点 Hawthorn(AU)
  • 作者单位

    Centre for Intelligent Systems Research, Deakin University, Waurn Ponds, Australia;

    School of Electrical and Computer Engineering, RMIT University, Melbourne, Australia;

    Department of Biochemistry and Molecular Biology, Monash University, Clayton, Australia;

    Ian Wark Research Institute, University of South Australia, Mawson Lakes, Australia;

    School of Electrical and Computer Engineering, RMIT University, Melbourne, Australia;

    School of Electrical and Computer Engineering, RMIT University, Melbourne, Australia;

    Centre for Intelligent Systems Research, Deakin University, Waurn Ponds, Australia;

    The BioMEMS Research Group, School of Chemical Sciences, University of Auckland, New Zealand;

    School of Electrical and Computer Engineering, RMIT University, Melbourne, Australia;

    School of Electrical and Computer Engineering, RMIT University, Melbourne, Australia;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 智能材料;
  • 关键词

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