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Integrated nanoporeicrochannel devices for ac electroldnetic trapping of particles

机译:集成纳米孔/微通道设备,用于交流电捕获颗粒

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We report integrated nanopore/microfluidic devices in which the unique combination of low pore density, conical nanopore membranes with microfluidic channels created addressable, localized high-field regions for electrophoretic and dielectrophoretic trapping of particles. A poly(ethylene terephthalate) track-etched membrane containing conical pores similar to 130 nm in diameter at the tip and similar to 1 mu m in diameter at the base was used as an interconnect between two perpendicular poly(dimethylsiloxane) microfluidic channels. Integration of the nanopore membrane with microfluidic channels allowed for easy coupling of the electrical potentials and for directed transport of the analyte particles, 200 nm and 1 mu m polystyrene microspheres and Caulobacter crescentus bacteria, to the trapping region. Square waves applied to the device generated electric field strengths up to 1.3 x 10(5) V/cm at the tips of the nanopores in the microchannel intersection. By varying the applied potentials from +/- 10 to +/- 100 V and exploring frequencies from dc to 100 kHz, we determined the contributions of electrophoretic and dielectrophoretic forces to the trapping and concentration process. These results suggest that tunable filter elements can be constructed in which themanoporous elements provide a physical barrier and the applied ac field enhanced selectivity.
机译:我们报告了集成的纳米孔/微流控设备,其中低孔密度,锥形纳米孔膜与微流控通道的独特结合为粒子的电泳和介电泳捕获创造了可寻址的局部高场区域。在两个垂直的聚(二甲基硅氧烷)微流体通道之间的互连使用了一种聚对苯二甲酸乙二酯轨迹蚀刻膜,该膜的尖端直径相似,为130 nm,底部的直径相似,为1μm。纳米孔膜与微流体通道的整合使得电势易于耦合,并且将分析物颗粒,200 nm和1μm聚苯乙烯微球和新月形杆菌定向运输到捕集区域。施加到该设备的方波在微通道相交处的纳米孔尖端产生的电场强度高达1.3 x 10(5)V / cm。通过将施加的电势从+/- 10 V改变为+/- 100 V,并探索从dc到100 kHz的频率,我们确定了电泳力和介电泳力对捕获和浓缩过程的贡献。这些结果表明,可以构造可调谐滤波器元件,其中多孔元件提供物理屏障,并且所施加的交流场增强了选择性。

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