首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Experimental and theoretical study of dielectrophoretic particle trapping in arrays of insulating structures: Effect of particle size and shape
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Experimental and theoretical study of dielectrophoretic particle trapping in arrays of insulating structures: Effect of particle size and shape

机译:绝缘结构阵列中介电泳粒子捕获的实验和理论研究:粒子尺寸和形状的影响

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摘要

Insulator-based dielectrophoresis (iDEP) employs insulating structures embedded in a microchannel to produce electric field gradients. This contribution presents a detailed analysis of the regions within an iDEP system where particles are likely to be retained due to dielectrophoretic trapping in a microchannel with an array of cylindrical insulating structures. The effects of particle size and shape on dielectrophoretic trapping were analyzed by employing 1 and 2 m polystyrene particles and Escherichia coli cells. This research aims to study the mechanism behind dielectrophoretic trapping and develop a deeper understanding of iDEP systems. Mathematical modeling with COMSOL Multiphysics was employed to assess electrokinetic and dielectrophoretic particle velocities. Experiments were carried out to determine the location of dielectrophoretic barriers that block particle motion within an iDEP microchannel; this supported the estimation of a correction factor to match experiments and simulations. Particle velocities were predicted with the model, demonstrating how the different forces acting on the particles are in equilibrium when particle trapping occurs. The results showed that particle size and shape have a significant effect on the magnitude, location, and shape of the regions of dielectrophoretic trapping of particles, which are defined by DEP isovelocity lines and EK isovelocity lines.
机译:基于绝缘体的介电电泳(iDEP)采用嵌入微通道中的绝缘结构来产生电场梯度。该贡献对iDEP系统中的区域进行了详细的分析,在该区域中,由于在带有圆柱形绝缘结构阵列的微通道中的介电泳捕获,粒子很可能会被保留。通过使用1和2 m的聚苯乙烯颗粒以及大肠杆菌细胞,分析了粒径和形状对介电泳捕获的影响。这项研究旨在研究介电泳陷阱的机制,并加深对iDEP系统的了解。使用COMSOL Multiphysics的数学模型来评估电动和介电泳的粒子速度。进行了实验以确定介电泳屏障的位置,该屏障阻止了iDEP微通道内的粒子运动。这支持了校正因子的估计,以匹配实验和模拟。用该模型预测了粒子速度,说明了当发生粒子捕获时作用在粒子上的不同力如何达到平衡。结果表明,粒径和形状对介电电泳俘获区域的大小,位置和形状有显着影响,这由DEP等速线和EK等速线定义。

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