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基于取向的微流体控制

Orientation-Based Control of Microfluidics.

作者信息

Norouzi Nazila, Bhakta Heran C, Grover William H

机构信息

Department of Bioengineering, University of California, Riverside, Riverside, CA, United States of America.

出版信息

PLoS One. 2016 Mar 7;11(3):e0149259. doi: 10.1371/journal.pone.0149259. eCollection 2016.

Abstract

Most microfluidic chips utilize off-chip hardware (syringe pumps, computer-controlled solenoid valves, pressure regulators, etc.) to control fluid flow on-chip. This expensive, bulky, and power-consuming hardware severely limits the utility of microfluidic instruments in resource-limited or point-of-care contexts, where the cost, size, and power consumption of the instrument must be limited. In this work, we present a technique for on-chip fluid control that requires no off-chip hardware. We accomplish this by using inert compounds to change the density of one fluid in the chip. If one fluid is made 2% more dense than a second fluid, when the fluids flow together under laminar flow the interface between the fluids quickly reorients to be orthogonal to Earth's gravitational force. If the channel containing the fluids then splits into two channels, the amount of each fluid flowing into each channel is precisely determined by the angle of the channels relative to gravity. Thus, any fluid can be routed in any direction and mixed in any desired ratio on-chip simply by holding the chip at a certain angle. This approach allows for sophisticated control of on-chip fluids with no off-chip control hardware, significantly reducing the cost of microfluidic instruments in point-of-care or resource-limited settings.

摘要

大多数微流控芯片利用片外硬件(注射泵、计算机控制的电磁阀、压力调节器等)来控制芯片上的流体流动。这种昂贵、笨重且耗电的硬件严重限制了微流控仪器在资源有限或即时护理环境中的应用,在这些环境中,仪器的成本、尺寸和功耗必须受到限制。在这项工作中,我们提出了一种无需片外硬件的芯片上流体控制技术。我们通过使用惰性化合物来改变芯片中一种流体的密度来实现这一点。如果一种流体的密度比第二种流体高2%,当流体在层流状态下一起流动时,流体之间的界面会迅速重新定向,使其与地球引力方向正交。如果包含流体的通道随后分成两个通道,流入每个通道的每种流体的量由通道相对于重力的角度精确确定。因此,只需将芯片保持在一定角度,任何流体都可以在芯片上沿任何方向流动并以任何所需比例混合。这种方法无需片外控制硬件就能对芯片上的流体进行复杂控制,显著降低了即时护理或资源有限环境中微流控仪器的成本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/932e/4780784/6b0b32f78c15/pone.0149259.g001.jpg

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