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Nanocapillary array interconnects for gated analyte injections and electrophoretic separations in multilayer microfluidic architectures

机译:纳米毛细管阵列互连件,用于多层微流体体系结构中的门控分析物进样和电泳分离

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An electrokinetic injection technique is described which uses a nuclear track-etched nanocapillary array to inject sample plugs from one layer of a microfluidic device into another vertically separated layer for electrophoretic separations. Gated injection protocols for analyte separations, reported here, establish nanocapillary array interconnects as a route to multilevel microfluidic analytical designs. The hybrid nanofluidic/microfluidic gated injection protocol allows sample preparation and separation to be implemented in separate horizontal planes, thereby achieving multilayer integration. Repeated injections and separations of FITC-labeled arginine and tryptophan, using 200-nm pore-diameter capillary array injectors in place of traditional cross injectors are used to demonstrate gated injection with a bias configuration that uses relay switching of a single high-voltage source. Injection times as rapid as 0.3 s along with separation reproducibilities as low as 1% for FITC-labeled arginine exemplify the capability for fast, serial separations and analyses. Impedance analysis of the micro-anofluidic network is used to gain further insight into the mechanism by which this actively controlled nanofluidic-interconnect injection method works. Gated sample introduction via a nanocapillary array interconnect allows the injection and separation protocols to be optimized independently, thus realizing the versatility needed for real-world implementation of rapid, serial microchip analyses. [References: 35]
机译:描述了一种电动注射技术,该技术使用核径迹蚀刻的纳米毛细管阵列将样品塞从微流控设备的一层注入到另一个垂直分离的层中,以进行电泳分离。本文报道了用于分析物分离的门控进样方案,建立了纳米毛细管阵列互连,作为通向多级微流体分析设计的一种途径。混合的纳米流体/微流体门控注射方案允许样品制备和分离在单独的水平面中进行,从而实现多层集成。使用200 nm孔径的毛细管阵列进样器代替传统的交叉进样器,反复注射和分离FITC标记的精氨酸和色氨酸,以演示带有偏压配置的门控式注射,该配置使用单个高压源的继电器开关。 FITC标记精氨酸的进样时间短至0.3 s,分离重现性低至1%,证明了快速连续分离和分析的能力。使用微/纳米流体网络的阻抗分析可进一步了解这种主动控制的纳米流体互连注射方法的工作机理。通过纳米毛细管阵列互连引入的门控样品允许独立优化进样和分离方案,从而实现在现实世界中快速进行串行微芯片分析所需的多功能性。 [参考:35]

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