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Active Manipulation of Quantum Dots using AC Electrokinetics

机译:使用交流电动学对量子点的主动操纵

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The superior optical and electrical properties of quantum dot (QD) nanoparticles are being applied in a new generation of QD devices for microelectronic, nanophotonic, and biomedical systems. Research on integrated QD-based systems has been focused on passive manipulation of QDs including template-guided self-assembly, molecular scaffold-based assembly, and microbead-based assembly. However, little effort has been devoted to development of methods for active manipulation, such as positioning and concentration, of QDs. In this study, we show that 20 nm colloidal QDs can be effectively positioned and concentrated using a combination of dielectrophoresis (DEP) and AC electro-osmosis (ACEO). The long-range fluid motion generated by ACEO entrains QDs to the area near the electrode surface, which facilitates the trapping of QDs by DEP. A systematic investigation was performed to examine electrokinetic processes at different applied frequencies and voltages using a concentric electrode configuration. We demonstrate that QDs can be dynamically positioned with an electric field strength as small as 10 kV/m and define the operating parameters for increasing the concentration of colloidal QDs by 2 orders of magnitude within one minute.
机译:量子点(QD)纳米粒子的卓越光学和电学性质正被用于新一代微电子,纳米光子和生物医学系统的QD设备中。对基于QD的集成系统的研究一直集中在QD的被动操纵上,包括模板引导的自组装,基于分子支架的组装和基于微珠的组装。但是,很少有精力致力于主动操作方法的开发,例如QD的定位和集中。在这项研究中,我们表明,通过使用介电电泳(DEP)和交流电渗透(ACEO)的组合,可以有效地定位和浓缩20 nm胶体QD。 ACEO产生的远距离流体运动将QD夹带到电极表面附近的区域,这有利于DEP捕获QD。使用同心电极配置进行了系统的研究,以检查在不同的施加频率和电压下的电动过程。我们证明,量子点可以动态定位,电场强度小至10 kV / m,并定义了在1分钟内将胶体量子点浓度提高2个数量级的操作参数。

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