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Improving the Design and Application of Insulator-based Dielectrophoretic Devices for the Assessment of Complex Mixtures

机译:改进基于绝缘子的介电泳设备用于复杂混合物评估的设计和应用

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摘要

Dielectrophoresis (DEP) is an electrokinetic (EK) transport mechanism that exploits polarization effects when particles are exposed to a non-uniform electric field. This dissertation focused on the development of high-performance insulator-based DEP (iDEP) devices. A detailed analysis of the spatial forces that contribute to particle movement in an iDEP device is provided. In particular, this analysis shows how particle size and shape affects the regions where particles are likely to be retained due to dielectrophoretic trapping . The performance of these trapping regions was optimized using a systematic approach that integrates the geometrical parameters of the array of insulating structures. Devices that decrease the required electrical potential by ~80% where found. The optimization strategy enabled the detection of structures that promote and discourage particle trapping. By combining the "best" and "worst" structures in a single asymmetric structure, a novel iDEP device was designed. This device selectively enriches the larger particles in a sample and drives the smaller particles away from the enrichment region. A quick enrichment and elution of large cells was achieved. This is important when dealing with samples containing eukaryotic cells, which can be harmed by the electrical treatment. Yeast cells were successfully separated from polystyrene particles in under 40 seconds using this device and a high cell viability of 85% was achieved. Finally, an enhancement of traditional iDEP devices is proposed, where some insulating posts are replaced by conducting structures. That is, insulating and conductive posts are intimately combined within the same array. The performance of this hybrid device is presented to show the advantage of using insulating structures with microelectrodes in the same array to dominate particle movement.
机译:介电电泳(DEP)是一种电动(EK)传输机制,当粒子暴露于非均匀电场时会利用极化效应。本文致力于高性能绝缘子基DEP(iDEP)器件的开发。提供了对有助于iDEP设备中粒子运动的空间力的详细分析。特别地,该分析显示了粒径和形状如何影响由于介电电泳而可能保留颗粒的区域。这些捕获区域的性能是使用系统方法优化的,该方法集成了绝缘结构阵列的几何参数。找到的设备可将所需电势降低约80%。优化策略可以检测促进和阻止颗粒捕集的结构。通过将“最佳”和“最差”结构组合到单个不对称结构中,设计了一种新颖的iDEP器件。该装置选择性地富集样品中的较大颗粒,并将较小的颗粒驱离富集区域。实现了大细胞的快速富集和洗脱。当处理含有真核细胞的样品时,这一点很重要,而真核细胞可能会受到电处理的伤害。使用该装置在40秒内成功地将酵母细胞与聚苯乙烯颗粒分离,并获得了85%的高细胞活力。最后,提出了对传统iDEP器件的增强,其中一些绝缘柱被导电结构代替。即,绝缘和导电柱紧密地结合在同一阵列内。提出了这种混合装置的性能,以显示在同一阵列中使用带有微电极的绝缘结构来控制粒子运动的优势。

著录项

  • 作者

    Saucedo-Espinosa, Mario A.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Biomedical engineering.;Chemical engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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