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Laser micromachined hybrid open/paper microfluidic chips

机译:激光微加工混合开放/纸张微流控芯片

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摘要

Paper-based microfluidics are an increasingly popular alternative to devices with conventional open channel geometries. The low cost of fabrication and the absence of external instrumentation needed to drive paper microchannels make them especially well suited for medical diagnostics in resource-limited settings. Despite the advantages of paper microfluidics, many assays performed using conventional open channel microfluidics are challenging to translate onto paper, such as bead, emulsion, and cell-based assays. To overcome this challenge, we have developed a hybrid open-channel/paper channel microfluidic device. In this design, wick-driven paper channels control the flow rates within conventional microfluidics. We fabricate these hybrid chips using laser-micromachined polymer sheets and filter paper. In contrast to previous efforts that utilized external, macroscopic paper-based pumps, we integrated micro-scale paper and open channels onto a single chip to control multiple open channels and control complex laminar flow-pattern within individual channels. We demonstrated that flow patterns within the open channels can be quantitatively controlled by modulating the geometry of the paper channels, and that these flow rates agree with Darcy's law. The utility of these hybrid chips, for applications such as bead-, cell-, or emulsion-based assays, was demonstrated by constructing a hybrid chip that hydrodynamically focused micrometer-sized polystyrene beads stably for >10 min, as well as cells, without external instrumentation to drive fluid flow.
机译:纸基微流体技术已成为具有常规明渠几何形状的设备的一种日益流行的替代方法。低成本的制造以及无需驱动纸微通道的外部仪器,使其特别适合在资源有限的环境中进行医学诊断。尽管纸张微流体技术有很多优势,但是使用常规的开放通道微流体技术进行的许多测定方法都难以转化到纸张上,例如珠,乳液和基于细胞的测定方法。为了克服这一挑战,我们开发了一种混合式开放通道/纸张通道微流控设备。在这种设计中,灯芯驱动的纸通道可控制常规微流体中的流速。我们使用激光微加工的聚合物片和滤纸制造这些混合芯片。与以前使用外部宏观纸基泵的工作相比,我们将微型纸和开放通道集成到单个芯片上,以控制多个开放通道并控制单个通道内的复杂层流模式。我们证明,通过调节纸质通道的几何形状,可以定量控制明渠内的流动方式,并且这些流速符合达西定律。这些杂合芯片用于构建基于珠,细胞或乳液的检测方法的实用性,是通过构建一个杂合芯片来实现的,该杂合芯片可在10分钟以上的时间内对流体动力学聚焦的微米级聚苯乙烯珠以及细胞进行稳定聚焦,而无需外部仪器驱动流体流动。

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