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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Theoretical and experimental examination of particle-particle interaction effects on induced dipole moments and dielectrophoretic responses of multiple particle chains
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Theoretical and experimental examination of particle-particle interaction effects on induced dipole moments and dielectrophoretic responses of multiple particle chains

机译:粒子间相互作用对多粒子链诱导偶极矩和介电泳响应的理论和实验研究

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Dielectrophoresis (DEP), an electrokinetic phenomenon based on particle polarizations in nonuniform electric fields, is increasingly employed for particle and cell characterizations and manipulations in microdevices. However, particle number densities are rarely varied and particle-particle interactions are largely overlooked, but both affect particle's effective polarizations by changing the local electric field, which directly impacts particle assembly into chains. This work examines theoretical and experimental particle-particle interactions and dielectrophoretic responses in nonuniform electric fields, then presents individual and chain velocities of spherical polystyrene microparticles and red blood cells (RBCs) under DEP forces in a modified quadruple electrode microdevice. Velocities are independently compared between 1, 2, 3, and 4 polystyrene beads and RBCs assembled into chains aligned with the electric field. Simulations compared induced dipole moments for particles experiencing the same (single point) and changing (multiple points) electric fields. Experiments and simulations are compared by plotting DEP velocities versus applied signal frequency from 1 kHz to 80 MHz. Simulations indicate differences in the DEP force exerted on each particle according to chain position. Simulations and experiments show excellent qualitative agreement; chains with more particles experienced a decrease in the DEP response for both polystyrene beads and RBCs. These results advance understanding of the extent that induced dipole polarizations with multiple particle chains affect observed behaviors in electrokinetic cellular diagnostic systems.
机译:介电电泳(DEP)是一种基于非均匀电场中粒子极化的电动现象,越来越多地用于微器件中的粒子和细胞表征以及操纵。但是,粒子数的密度很少变化,粒子间的相互作用几乎被忽略,但是两者都通过改变局部电场而影响粒子的有效极化,这直接影响粒子组装成链。这项工作检查了在不均匀电场中的理论和实验粒子间相互作用以及介电泳响应,然后提出了在改进的四电极微装置中在DEP力作用下球形聚苯乙烯微粒和红细胞(RBC)的个体和链速度。分别比较组装成与电场对齐的链的1、2、3和4个聚苯乙烯珠和RBC之间的速度。仿真比较了在相同(单点)和变化(多点)电场下粒子的感应偶极矩。通过绘制DEP速度与从1 kHz到80 MHz的施加信号频率的曲线图来比较实验和仿真。仿真表明,根据链位置,施加在每个粒子上的DEP力不同。仿真和实验显示出极好的定性一致性;对于聚苯乙烯珠和RBC,具有更多颗粒的碳链经历了DEP响应的降低。这些结果使人们对具有多个粒子链的感应偶极极化影响电动细胞诊断系统中观察到的行为的程度有了进一步的了解。

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