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Accelerated Biofluid Filling in Complex Microfluidic Networks by Vacuum-Pressure Accelerated Movement (V-PAM)

机译:通过真空压力加速运动(V-PAM)加速复杂微流体网络中的生物流体填充

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摘要

Rapid fluid transport and exchange are critical operations involved in many microfluidic applications. However, conventional mechanisms used for driving fluid transport in microfluidics, such as micropumping and high pressure, can be inaccurate and difficult for implementation for integrated microfluidics containing control components and closed compartments. Here, a technology has been developed termed Vacuum-Pressure Accelerated Movement (V-PAM) capable of significantly enhancing biofluid transport in complex microfluidic environments containing dead-end channels and closed chambers. Operation of the V-PAM entails a pressurized fluid loading into microfluidic channels where gas confined inside can rapidly be dissipated through permeation through a thin, gas-permeable membrane sandwiched between microfluidic channels and a network of vacuum channels. Effects of different structural and operational parameters of the V-PAM for promoting fluid filling in microfluidic environments have been studied systematically. This work further demonstrates the applicability of V-PAM for rapid filling of temperature-sensitive hydrogels and unprocessed whole blood into complex irregular microfluidic networks such as microfluidic leaf venation patterns and blood circulatory systems. Together, the V-PAM technology provides a promising generic microfluidic tool for advanced fluid control and transport in integrated microfluidics for different microfluidic diagnosis, organs-on-chips, and biomimetic studies.
机译:快速的流体运输和交换是许多微流体应用中涉及的关键操作。然而,用于驱动微流体中的流体输送的常规机构,例如微泵和高压,可能是不准确的,并且对于包含控制部件和密闭隔室的集成微流体来说难以实现。在这里,已经开发出一种称为真空压力加速运动(V-PAM)的技术,该技术能够在包含死角通道和封闭腔室的复杂微流体环境中显着增强生物流体的运输。 V-PAM的运行需要将压力流体加载到微流体通道中,在该微流体通道中,可以通过夹在微流体通道和真空通道网络之间的薄的透气薄膜渗透来迅速驱散封闭在内部的气体。系统地研究了V-PAM不同结构和操作参数对促进微流体环境中流体填充的影响。这项工作进一步证明了V-PAM可将温度敏感的水凝胶和未加工的全血快速填充到复杂的不规则微流体网络中,例如微流体叶片通气模式和血液循环系统。在一起,V-PAM技术提供了一种有前途的通用微流体工具,可用于集成微流体中的高级流体控制和运输,以用于不同的微流体诊断,芯片上的器官和仿生研究。

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