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Sub-nanoliter, real-time flow monitoring in microfluidic chips using a portable device and smartphone

机译:亚纳米纳米,使用便携式设备和智能手机进行微流体芯片的实时流动监测

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The ever-increasing need for portable, easy-to-use, cost-effective, and connected point-of-care diagnostics (POCD) has been one of the main drivers of recent research on lab-on-a-chip (LoC) devices. A majority of these devices use microfluidics to manipulate precisely samples and reagents for bioanalysis. However, filling microfluidic devices with liquid can be prone to failure. For this reason, we have implemented a simple, yet efficient method for monitoring liquid displacement in microfluidic chips using capacitive sensing and a compact (75?mm?×?30?mm?×?10?mm), low-cost ($60), and battery-powered (10-hour autonomy) device communicating with a smartphone. We demonstrated the concept using a capillary-driven microfluidic chip comprising two equivalent flow paths, each with a total volume of 420 nL. Capacitance measurements from a pair of electrodes patterned longitudinally along the flow paths yielded 17 pL resolution in monitoring liquid displacement at a sampling rate of 1 data/s (~1?nL/min resolution in the flow rate). We characterized the system using human serum, biological buffers, and water, and implemented an algorithm to provide real-time information on flow conditions occurring in a microfluidic chip and interactive guidance to the user.
机译:不断增加的便携式,易于使用,经济高效和连接的护理点诊断(POCD)是最近关于芯片(LOC)的最近研究的主要驱动程序之一设备。这些设备中的大部分使用微流体来操纵精确的样品和试剂进行生物分析。然而,填充具有液体的微流体装置可以容易发生液体。因此,我们已经实施了一种简单但有效的方法,用于使用电容传感和紧凑(75Ωmm?×30?×10Ωmm),低成本(60美元),用于监测微流体芯片中的液体位移的简单但有效的方法和电池供电(10小时自主)设备与智能手机通信。我们使用包含两个等效流动路径的毛细管驱动的微流体芯片展示了该概念,每个毛细管芯片每个具有420ng的总体积。沿着流动路径纵向图案化的一对电极的电容测量产生了17个PL分辨率,用于以1数据/ s的采样率监测液体位移(在流速中的〜1Ωn1 / min分辨率)。我们用人血清,生物缓冲和水的特征表征了系统,并实现了一种算法,以提供关于在微流体芯片中发生的流动条件的实时信息和对用户的交互式指导。

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