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Electrophoretic retardation of colloidal particles in nonpolar liquids

机译:非极性液体中胶体颗粒的电泳延迟

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摘要

We have measured the electrophoretic mobility of single, optically trapped colloidal particles, while gradually depleting the co-ions and counterions in the liquid around the particle by applying a dc voltage. This is achieved in a nonpolar liquid, where charged reverse micelles act as co-ions and counterions. By increasing the dc voltage, the mobility first increases when the concentrations of co-ions and counterions near the particle start to decrease. At sufficiently high dc voltage (around 2 V), the mobility reaches a saturation value when the co-ions and counterions are fully separated. The increase in mobility is larger when the equilibrium ionic strength is higher. The dependence of the experimental data on the equilibrium ionic strength and on the applied voltage is in good agreement with the standard theory of electrophoretic retardation, assuming that the bare particle charge remains constant. This method is useful for studying the electrophoretic retardation effect and charging mechanisms for nonpolar colloids, and it sheds light on previously unexplained particle acceleration in electronic ink devices.
机译:我们测量了单个被光学捕获的胶体颗粒的电泳迁移率,同时通过施加直流电压逐渐耗尽了颗粒周围液体中的共离子和抗衡离子。这是在非极性液体中实现的,其中带电的反胶束充当共离子和抗衡离子。通过增加直流电压,当粒子附近的共离子和反离子浓度开始降低时,迁移率首先增加。在足够高的直流电压(约2 V)下,当共离子和抗衡离子完全分离时,迁移率达到饱和值。当平衡离子强度较高时,迁移率的增加较大。假设裸粒子电荷保持恒定,实验数据对平衡离子强度和所施加电压的依赖性与电泳延迟的标准理论完全吻合。该方法对于研究非极性胶体的电泳阻滞作用和电荷机理很有用,它为电子墨水设备中以前无法解释的粒子加速提供了启示。

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