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Single nanopore transport of synthetic and biological polyelectrolytes in three-dimensional hybrid microfluidic∕nanofluidic devices

机译:三维混合微流控纳米流体装置中合成和生物聚电解质的单纳米孔传输

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摘要

This paper presents a study of electrokinetic transport in single nanopores integrated into vertically stacked three-dimensional hybrid microfluidic∕nanofluidic structures. In these devices, single nanopores, created by focused ion beam (FIB) milling in thin polymer films, provide fluidic connection between two vertically separated, perpendicular microfluidic channels. Experiments address both systems in which the nanoporous membrane is composed of the same (homojunction) or different (heterojunction) polymer as the microfluidic channels. These devices are then used to study the electrokinetic transport properties of synthetic (i.e., polystyrene sulfonate and polyallylamine) and biological (i.e., DNA) polyelectrolytes across these nanopores using both electrical current measurements and confocal microscopy. Both optical and electrical measurements indicate that electro-osmotic transport is predominant over electrophoresis in single nanopores with d>180 nm, consistent with results obtained under similar conditions for nanocapillary array membranes.
机译:本文提出了在单个纳米孔中的电动迁移的研究,该单个纳米孔被集成到垂直堆叠的三维混合微流体-纳米流体结构中。在这些设备中,通过聚焦离子束(FIB)研磨聚合物薄膜形成的单个纳米孔在两个垂直分离的垂直微流体通道之间提供了流体连接。实验针对两种系统,其中纳米多孔膜由与微流体通道相同(同质结)或不同(异质结)的聚合物组成。然后使用电流测量和共聚焦显微镜,将这些装置用于研究合成(即聚苯乙烯磺酸盐和聚烯丙胺)和生物(即DNA)聚电解质在这些纳米孔上的电动传输特性。光学和电学测量均表明,电渗输运主要是在d> 180 nm的单个纳米孔中进行电泳,这与在纳米毛细管阵列膜的类似条件下获得的结果一致。

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