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Optically modulated electrokinetic manipulation and concentration of colloidal particles near an electrode surface

机译:光学调制的电动操作和电极表面附近的胶体颗粒的浓度

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摘要

We study a recently demonstrated AC electrokinetic technique for manipulation and concentration of colloidal particles on an electrode surface. The technique uses indium tin oxide (ITO)-based parallel-plate electrodes on which highly localized infrared (1064 nm) laser illumination is shone. We show that the highly localized laser illumination leads to a highly nonuniform heating of the electrode substrate, which in turn drives an electrothermal microvortex resulting in a rapid transport of particles toward the illuminated site. Hundreds of polystyrene particles, with diameters ranging from 2.0 to 0.1 ?m, suspended in a low conductivity solution (2.0 mS/m) could be aggregated at selected locations on the electrode by activating the laser illumination at suitable AC frequencies. Subsequent deactivation of the laser illumination causes the particles to scatter, and we explore this dynamical behavior for 1.0 ?m particles using Delaunay tessellations and high-speed videography. We establish that drag from the electrothermal microvortex acts against a repulsive force, which decreases with increasing AC frequency, to create stable particle clusters. Moreover, experimentally we show that this particle capturing technique can be characterized by a critical frequency: a frequency at which the captured colloidal particle cluster becomes unstable and particles are carried away into the bulk by the electrothermal microvortex. This critical frequency increases with decreasing particle diameter for similar particles. For 0.1 ?m particles, comparison of aggregation at different AC frequencies is achieved by the comparison of fluorescent intensity profiles of the aggregations
机译:我们研究了最近证明的交流电动技术,用于操纵和浓缩电极表面上的胶体颗粒。该技术使用基于铟锡氧化物(ITO)的平行板电极,在其上照射了高度局部的红外(1064 nm)激光照明。我们表明,高度局部化的激光照明会导致电极基板的高度不均匀加热,进而驱动电热微涡旋,从而导致粒子朝着被照明的部位快速传输。悬浮在低电导率溶液(2.0 mS / m)中的数百个直径为2.0到0.1μm的聚苯乙烯颗粒可以通过在适当的AC频率下激活激光照射而聚集在电极上的选定位置。随后的激光照射失活会导致粒子散射,我们使用Delaunay镶嵌和高速摄影技术探索了1.0 µm粒子的动力学行为。我们确定,来自电热微涡旋的阻力与排斥力相反,该排斥力随着交流频率的增加而减小,从而创建稳定的粒子簇。而且,从实验上我们表明,这种粒子捕获技术的特征在于临界频率:被捕获的胶体粒子簇变得不稳定并且电热微涡旋将粒子带入主体的频率。对于相似颗粒,该临界频率随着粒径的减小而增加。对于0.1μm的颗粒,通过比较聚集体的荧光强度分布,可以比较不同AC频率下的聚集体

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