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Mechanistic and experimental investigations of pulsed electric field flow fractionation micro device and its applications for nanoparticle and biomolecule separation.

机译:脉冲电场流分离微装置的机理和实验研究及其在纳米颗粒和生物分子分离中的应用。

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摘要

Miniaturized analytical systems have been widely investigated over the past decade due to their tremendous advantages over conventional systems and their potential applications to many areas. In general, a chemical or biochemical analysis requires multiple steps, of which separation is an essential one. Electrical field flow fractionation (EFFF) is a flow-based separation technique that combines an electric field and a perpendicular hydrodynamic flow with a parabolic profile. It gains several advantages by miniaturization due to a stronger electric field and a reduced channel thickness. Moreover, its simple device structure and its wide applicability make EFFF possible to be integrated with other micro modules. However, the major problem of EFFF is the weak effective field for separation across its flow channel due to the double layers on the electrode surfaces. In this thesis, we firstly overcome the problem of the weak effective field by applying a pulsed voltage on the EFFF, and advance this technique and the corresponding micro device for the separation of nanoparticles and biomolecules.; The dynamics of the electrical double layer in a micro EFFF (mu-EFFF) device is analyzed numerically and characterized experimentally. The device consists of two indium tin oxide (ITO) electrodes with a flow channel, and it is fabricated using micromachining technology. In comparison to the constant voltage operation, the mu-EFFF device operated with pulsed voltage obtains a stronger electric field. The practical use of pulsed voltage in the micro device is explored by investigating the retention and separation of polystyrene nanoparticles. A longer retention time was measured for higher pulse frequencies. The improved separation of nanoparticles with different surface charges and sizes was demonstrated. Pulsed voltage operation does not only overcome the weak effective field, but also offers additional parameters, such as the pulse frequency and waveform to optimize its separation performance.; The mechanisms of EFFF operated with pulsed voltage (pulsed EFFF) were studied by in-situ visualization and theoretical calculation of the particle motion in the mu-EFFF devices with different electrode designs. Charged nanoparticles can be manipulated by either electrophoretic or dielectrophoretic forces depending on the electrode designs. Two mechanistic models of pulsed EFFF were postulated for planer and segmented mu-EFFF devices. The applicability of this EFFF based micro device for DNA separation was discussed.
机译:在过去的十年中,由于小型分析系统相对于常规系统的巨大优势及其在许多领域的潜在应用,人们对其进行了广泛的研究。通常,化学或生化分析需要多个步骤,其中分离是必不可少的步骤。电场流分离(EFFF)是基于流的分离技术,将电场和垂直流体动力流与抛物线轮廓结合在一起。由于更强的电场和更小的沟道厚度,它通过小型化获得了多个优势。而且,其简单的设备结构和广泛的适用性使EFFF可以与其他微模块集成。但是,EFFF的主要问题是由于电极表面上的双层,因此在整个流道上难以有效分离。本文首先通过在EFFF上施加脉冲电压来克服有效电场弱的问题,并提出了该技术和相应的用于分离纳米粒子和生物分子的微型装置。对微型EFFF(mu-EFFF)器件中双电层的动力学进行了数值分析,并进行了实验表征。该设备由两个带有流道的铟锡氧化物(ITO)电极组成,并使用微加工技术制造。与恒定电压操作相比,以脉冲电压操作的mu-EFFF器件可获得更强的电场。通过研究聚苯乙烯纳米颗粒的保留和分离,探索了微设备中脉冲电压的实际使用。对于较高的脉冲频率,需要更长的保留时间。证明了具有不同表面电荷和尺寸的纳米颗粒的分离得到了改善。脉冲电压操作不仅克服了弱的有效磁场,而且还提供了其他参数,例如脉冲频率和波形,以优化其分离性能。通过对具有不同电极设计的mu-EFFF装置中粒子运动的原位可视化和理论计算,研究了脉冲电压下EFFF的机理(脉冲EFFF)。取决于电极设计,带电的纳米粒子可以通过电泳力或介电泳力来操纵。提出了两种用于平面和分段mu-EFFF设备的脉冲EFFF机械模型。讨论了这种基于EFFF的微型设备对DNA分离的适用性。

著录项

  • 作者

    Lao, Ieng Kin.;

  • 作者单位

    Hong Kong University of Science and Technology (People's Republic of China).;

  • 授予单位 Hong Kong University of Science and Technology (People's Republic of China).;
  • 学科 Engineering Chemical.; Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 222 p.
  • 总页数 222
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);生物化学;
  • 关键词

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