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Microparticles manipulation and enhancement of their separation in pinched flow fractionation by insulator-based dielectrophoresis

机译:通过基于绝缘体的介电电泳的微粒操纵和增强它们在夹持流量分离中的分离

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摘要

The separation and manipulation of microparticles in lab on a chip devices have importance in point of care diagnostic tools and analytical applications. The separation and sorting of particles from biological and clinical samples can be performed using active and passive techniques. In passive techniques, no external force is applied while in active techniques by applying external force (e.g. electrical), higher separation efficiency is obtained. In this article, passive (pinched flow fractionation) and active (insulator-based dielectrophoresis) methods were combined to increase the separation efficiency at lower voltages. First by simulation, appropriate values of geometry and applied voltages for better focusing, separation, and lower Joule heating were obtained. Separation of 1.5 and 6 mu m polystyrene microparticles was experimentally obtained at optimized geometry and low total applied voltage (25 V). Also, the trajectory of 1.5 mu m microparticles was controlled by adjusting the total applied voltage.
机译:在芯片器件上的实验室中微粒的分离和操纵在护理诊断工具和分析应用中具有重要性。可以使用主动和无源技术进行生物和临床样品中的颗粒的分离和分选。在被动技术中,通过施加外力(例如电),在活性技术中没有施加外力,获得更高的分离效率。在本文中,组合了被动(挤压的流量分馏)和活性(基于绝缘体的介电电泳)方法,以提高较低电压下的分离效率。首先通过模拟,获得了适当的几何形状和施加电压,以获得更好的聚焦,分离和更低的焦耳加热。在优化的几何形状和低总施加电压(25V)下,实验地获得1.5和6μm聚苯乙烯微粒的分离。而且,通过调节总施加的电压来控制1.5μm微粒的轨迹。

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