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Osmotically Actuated Micropumps and Control Valves for Point-of-Care Applications

机译:现场护理应用的渗透驱动微型泵和控制阀

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We present novel micropumps and valves actuated by osmotic flow for point-of-care (POC) applications. Although there has been significant progress in the development of microfluidic flowcontrol components, such as fluidic switches, diodes, and resonators, the flow needs to be ultimately supplied by bulky off-chip active components. These off-chip components cannot be easily miniaturized integrated micropumps that utilize electrostatic, piezoelectric, or electroosmotic actuation require high operational voltages, limiting their applications. Other novel approaches, such as magnetic actuation and liquid metal pumping, are also limited by their nonstandard processes and biocompatibility. In this paper, we report two active components, control valves and fluid pumps, actuated by osmotic mechanism, allowing completely stand-alone integrated microfluidic systems. To the best of our knowledge, this is the first attempt to realize control valves by osmosis. The valve can maintain robust sealing up to 125 kPa of back pressure. The fabricated osmotic pump is capable of pumping at >30 L/min, which is higher than that of previous works by an order of magnitude. To demonstrate the feasibility of manipulating biofluids, white blood cells suspended in serum were driven and filtered by osmotic actuation. The experimental results verified the potential use of osmotic actuation for POC disposable microfluidics. [2014–0219]
机译:我们为护理点(POC)应用介绍了由渗透流驱动的新型微型泵和阀门。尽管在微流体流量控制组件(例如,流体开关,二极管和谐振器)的开发方面已经取得了重大进展,但最终仍需要庞大的片外有源组件来提供流量。这些片外组件无法轻易实现小型化的集成微型泵,这些微型泵利用静电,压电或电渗透驱动需要高工作电压,从而限制了它们的应用。其他新颖的方法,例如磁力驱动和液态金属泵送,也受到其非标准工艺和生物相容性的限制。在本文中,我们报告了两个主动组件,控制阀和流体泵,由渗透机制驱动,可实现完全独立的集成微流体系统。据我们所知,这是通过渗透实现控制阀的首次尝试。该阀可在高达125 kPa的背压下保持牢固的密封。所制造的渗透泵能够以> 30 L / min的速度泵送,这比以前的工作泵高了一个数量级。为了证明操作生物流体的可行性,通过渗透驱动来驱动和过滤悬浮在血清中的白细胞。实验结果证明了渗透致动可用于POC一次性微流控技术。 [2014-0219]

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