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气泡泵:平面内液体路由的可扩展策略。

Bubble pump: scalable strategy for in-plane liquid routing.

机构信息

Department of Mechanical and Industrial Engineering, University of Toronto, 5 King's College Road, Toronto, Ontario M5S 3G8, Canada.

出版信息

Lab Chip. 2015 Jul 7;15(13):2842-53. doi: 10.1039/c5lc00326a. Epub 2015 May 28.

Abstract

We present an on-chip liquid routing technique intended for application in well-based microfluidic systems that require long-term active pumping at low to medium flowrates. Our technique requires only one fluidic feature layer, one pneumatic control line and does not rely on flexible membranes and mechanical or moving parts. The presented bubble pump is therefore compatible with both elastomeric and rigid substrate materials and the associated scalable manufacturing processes. Directed liquid flow was achieved in a microchannel by an in-series configuration of two previously described "bubble gates", i.e., by gas-bubble enabled miniature gate valves. Only one time-dependent pressure signal is required and initiates at the upstream (active) bubble gate a reciprocating bubble motion. Applied at the downstream (passive) gate a time-constant gas pressure level is applied. In its rest state, the passive gate remains closed and only temporarily opens while the liquid pressure rises due to the active gate's reciprocating bubble motion. We have designed, fabricated and consistently operated our bubble pump with a variety of working liquids for >72 hours. Flow rates of 0-5.5 μl min(-1), were obtained and depended on the selected geometric dimensions, working fluids and actuation frequencies. The maximum operational pressure was 2.9 kPa-9.1 kPa and depended on the interfacial tension of the working fluids. Attainable flow rates compared favorably with those of available micropumps. We achieved flow rate enhancements of 30-100% by operating two bubble pumps in tandem and demonstrated scalability of the concept in a multi-well format with 12 individually and uniformly perfused microchannels (variation in flow rate <7%). We envision the demonstrated concept to allow for the consistent on-chip delivery of a wide range of different liquids that may even include highly reactive or moisture sensitive solutions. The presented bubble pump may provide active flow control for analytical and point-of-care diagnostic devices, as well as for microfluidic cells culture and organ-on-chip platforms.

摘要

我们提出了一种片上液体路由技术,旨在应用于基于井的微流控系统,这些系统需要在低至中等流速下进行长期主动泵送。我们的技术仅需要一个流体特征层、一条气动控制线,并且不依赖于柔性膜和机械或移动部件。因此,所提出的气泡泵与弹性体和刚性基底材料以及相关的可扩展制造工艺兼容。通过两个先前描述的“气泡门”的串联配置,即通过气体气泡实现微型门阀,在微通道中实现了定向液体流动。仅需要一个时变压力信号,并在上游(主动)气泡门处启动往复气泡运动。在下游(被动)门处施加时不变的气体压力水平。在其静止状态下,被动门保持关闭,仅在由于主动门的往复气泡运动而导致液体压力升高时临时打开。我们使用各种工作液体设计、制造和一致地操作我们的气泡泵超过 72 小时。获得了 0-5.5 μl min(-1)的流速,并且取决于所选的几何尺寸、工作流体和激励频率。最大工作压力为 2.9 kPa-9.1 kPa,并且取决于工作流体的界面张力。可达到的流速与可用微泵相当。通过串联操作两个气泡泵,我们实现了 30-100%的流速增强,并在具有 12 个单独且均匀灌注的微通道的多井格式中演示了该概念的可扩展性(流速变化<7%)。我们设想所演示的概念允许一致地输送广泛的不同液体,甚至包括高反应性或对水分敏感的溶液。所提出的气泡泵可以为分析和即时诊断设备、微流控细胞培养和器官芯片平台提供主动流量控制。

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