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Combined AC‐electrokinetic effects: Theoretical considerations on a three‐axial ellipsoidal model

机译:交流电-电动组合效应:三轴椭圆模型的理论考虑

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摘要

AC fields induce charges at the structural interfaces of particles or biological cells. The interaction of these charges with the field generates frequency‐dependent forces that are the basis for AC‐electrokinetic effects such as dielectrophoresis (DEP), electrorotation (ROT), electro‐orientation, and electro‐deformation. The effects can be used for the manipulation or dielectric single‐particle spectroscopy. The observation of a particular effect depends on the spatial and temporal field distributions, as well as on the shape and the dielectric and viscoelastic properties of the object. Because the effects are not mutually independent, combined frequency spectra are obtained, for example, discontinuous DEP and ROT spectra with ranges separated by the reorientation of nonspherical objects in the linearly and circularly polarized DEP and ROT fields, respectively. As an example, the AC electrokinetic behavior of a three‐axial ellipsoidal single‐shell model with the geometry of chicken‐red blood cells is considered. The geometric and electric problems were separated using the influential‐radius approach. The obtained finite‐element model can be electrically interpreted by an RC model leading to an expression for the Clausius–Mossotti factor, which permits the derivation of force, torque, and orientation spectra, as well as of equations for the critical frequencies and force plateaus in DEP and of the characteristic frequencies and peak heights in ROT. Expressions for the orientation in linearly and circularly polarized fields, as well as for the reorientation frequencies were also derived. The considerations suggested that the simultaneous registration of various AC‐electrokinetic spectra is a step towards the dielectric fingerprinting of single objects.
机译:交流电场在颗粒或生物细胞的结构界面处感应电荷。这些电荷与磁场的相互作用会产生频率相关的力,这些力是交流电效应的基础,例如介电电泳(DEP),电旋转(ROT),电取向和电变形。这些效应可用于操纵或介电单粒子光谱。对特定效果的观察取决于对象的空间和时间场分布以及形状,介电和粘弹性质。因为效果不是相互独立的,所以可以得到组合的频谱,例如不连续的DEP和ROT频谱,其范围分别由非球形物体在线性和圆极化的DEP和ROT场中的重新定向所分隔。例如,考虑了具有鸡血红细胞几何形状的三轴椭圆形单壳模型的交流电动力学行为。使用影响半径方法将几何和电气问题分开。所获得的有限元模型可以通过RC模型进行电解释,从而得出克劳修斯-莫索蒂因子的表达式,从而可以推导力,转矩和取向谱以及临界频率和受力平稳期的方程式以DEP表示,以及ROT的特征频率和峰值高度。还得出了线偏振和圆偏振场中的取向以及重新取向频率的表达式。考虑因素表明,各种交流电动频谱的同时配准是迈向单个物体电介质指纹的一步。

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