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Transport and separation of micron sized particles at isotachophoretic transition zones

机译:微米颗粒在等速电泳过渡区的传输和分离

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摘要

Conventionally, isotachophoresis (ITP) is used for separation of ionic samples according to their electrophoretic mobilities. We demonstrate that the scope of ITP applications may be extended toward particle concentration and separation. Owing to the distributions of electrolyte concentration and electric field inside a transition zone between two electrolytes, a number of different forces act on a small particle. As far as possible, we provide estimates for the order of magnitude of these forces and analyze their scaling with the particle size and the electric-field strength. Furthermore, we experimentally demonstrate that polymer beads of 5 μm diameter dispersed in a high mobility “leading” electrolyte are picked up and carried along by an ITP transition zone which is formed with a low mobility “trailing” electrolyte. By studying the particle positions and trajectories, we show that impurities in the electrolytes play a significant role in the experiments. Additionally, it is experimentally shown that different types of beads can be separated at an ITP transition zone. In particular, beads of 1 μm diameter are not carried along with the transition zone, in contrast to the 5 μm beads. The presented technique thus adds to the portfolio of electrokinetic transport, concentration, and separation methods in microfluidics.
机译:通常,等速电泳(ITP)用于根据离子样本的电泳迁移率分离离子样本。我们证明,ITP应用的范围可能会扩展到颗粒浓缩和分离。由于两种电解质之间过渡区域内电解质浓度和电场的分布,许多不同的力作用在一个小颗粒上。我们尽可能提供这些力的数量级估计值,并根据粒径和电场强度分析它们的缩放比例。此外,我们通过实验证明,分散在高迁移率“前导”电解质中的直径为5μm的聚合物珠粒会被由低迁移率“尾随”电解质形成的ITP过渡区带走并携带。通过研究粒子的位置和轨迹,我们表明电解质中的杂质在实验中起着重要的作用。另外,实验表明,可以在ITP过渡区分离不同类型的珠子。特别地,与5μm的珠相反,直径1μm的珠不随过渡区一起携带。因此,提出的技术增加了微流体学中的电动传输,浓缩和分离方法的产品组合。

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