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High-throughput single-particle detections using a dual-height-channel-integrated pore

机译:使用双高通道集成孔的高通量单粒子检测

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We report a proof-of-principle demonstration of particle concentration to achieve high-throughput resistive pulse detections of bacteria using a microfluidic-channel-integrated micropore. We fabricated polymeric nanochannels to trap micrometer-sized bioparticles via a simple water pumping mechanism that allowed aggregation-free size-selective particle concentration with negligible loss. Single-bioparticle detections by ionic current measurements were then implemented through releasing and transporting the thus-collected analytes to the micropore. As a result, we attained two orders of magnitude enhancement in the detection throughput by virtue of an accumulation effect via hydrodynamic control. The device concept presented may be useful in developing nanopores and nanochannels for high-throughput single-particle and -molecule analyses.
机译:我们报告了颗粒浓度的原则证明,以实现使用微流体通道集成微孔的高通量电阻脉冲检测细菌。 我们通过简单的水泵机构制造聚合物纳米烷基,以通过简单的水泵机构捕获微米型生物颗粒,使得无聚集的尺寸选择性颗粒浓度具有可忽略的损失。 然后通过释放和将如此收集的分析物释放到微孔的离子电流测量的单生物颗粒检测。 结果,我们通过流体动力学控制的累积效果来达到检测吞吐量中的两个数量级增强。 呈现的器件概念可用于开发纳米孔和纳米孔,用于高通量单颗粒和 - 摩尔分析。

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