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Floating-Disk Parylene Microvalves for Self-Pressure-Regulating Flow Controls

机译:浮动盘式聚对二甲苯微阀,用于自调压流量控制

摘要

This paper presents the first parylene-based floating-disk microvalve with self-pressure-regulating characteristics for various microfluidic applications. By incorporating a free-floating disk diaphragm with no anchoring/tethering structures to constrain its movement, the microvalve realizes configurable pressure-based flow-shunting functions in a stand-alone fashion. Its passive operation eliminates the need for power sources or the external actuation of the device. A multilayer polymer surface-micromachining technology is utilized for device fabrication by exploiting parylene C (poly-chloro-p-xylylene) as the biocompatible structural material for high mechanical compliance as compared with other conventional thin-film materials. Experimental results successfully demonstrate that the in-channel microvalves control water flows in the following two different shunt designs: 1) a nearly ideal regular check valve with zero forward-cracking pressure, zero reverse leakage, and 1.25 x 10^13 - 2.09 x 10^13 N·s/m^5 (0.03–0.05 psi·min/μL, 1.55–2.59 mmHg·min/μL) of fluidic resistance; and 2) a pressure–bandpass check valve with 0–100 mmHg and 0–10 μL/min of pressure and flow rate regulation ranges, respectively, as well as 4.88 x 10^13 N·s/m^5 (0.12 psi·min/μL, 6.08 mmHg·min/μL) of fluidic resistance in the forward conductive region. Such a biocompatible and implantable microvalve has the great potential of being integrated in microfluidic systems to facilitate effective microflow control for lab-on-a-chip and biomedical applications.
机译:本文介绍了首款具有自调压特性的基于聚对二甲苯的浮盘微阀,适用于各种微流体应用。通过并入没有锚定/系留结构的自由浮动盘式隔膜来限制其运动,该微型阀以独立方式实现了可配置的基于压力的分流功能。它的被动运行消除了对电源或设备外部驱动的需求。与其他常规的薄膜材料相比,多层聚合物表面微加工技术通过利用聚对二甲苯C(聚氯对二甲苯)作为生物相容性结构材料来实现高机械柔顺性,从而用于器件制造。实验结果成功地证明,在以下两种不同的分流设计中,通道内微阀可控制水流:1)具有理想的常规止回阀,其正向开启压力为零,反向泄漏为零,且1.25 x 10 ^ 13-2.09 x 10流体阻力为^ 13 N·s / m ^ 5(0.03-0.05 psi·min /μL,1.55-2.59 mmHg·min /μL);和2)压力带通止回阀,压力和流量调节范围分别为0-100 mmHg和0-10μL/ min,以及4.88 x 10 ^ 13 N·s / m ^ 5(0.12 psi· min /μL,6.08 mmHg·min /μL)。这种具有生物相容性和可植入性的微型阀具有集成在微流控系统中的巨大潜力,可促进对芯片实验室和生物医学应用的有效微流控制。

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