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Design, Fabrication and Testing of Magnetic Composite Polymer Actuators Integrated With Microfluidic Devices and Systems

机译:集成有微流体装置和系统的磁性复合聚合物致动器的设计,制造和测试

摘要

Work presented in this thesis demonstrates methods of combining a newly developed magnetic composite polymer (M-CP) with other commonly used polymer microfluidics materials for the creation of complex all-polymer microfluidic systems. To achieve fully integrated microfluidic systems, new fabrication techniques for integration of M-CP structures are developed. Employing the new M-CP material and the novel fabrication techniques, three types of actuators are developed: cilia, flap, and hybrid M-CP/PDMS actuator. All three actuators employ compatible materials, fabrication techniques, and actuation mechanisms. The performance of each of these actuators is characterized for different applications: cilia-based mixers, flap-based valves, and hybrid M-CP/PDMS actuators for applying extracellular stimulation on cell monolayers. The actuators in each of these applications are driven via relatively small external magnetic fields. The M-CP used in these novel actuators is composed of rare-earth magnetic micro-particles (5–10 micrometer) that are embedded in polydimethylsiloxane. The M-CP is patterned into large force, large stroke actuators. The polymer matrix without magnetic particles is employed as the substrate material for passive parts, facilitating integration of the magnetic and non-magnetic materials. The compatible fabrication techniques include a modified soft-lithography technique for hybrid M-CP/PDMS actuators, screen printing via shadow masks for micro-patterning of thin layers of M-CP, and a novel fabrication technique using poly(ethylene glycol) (PEG) as a sacrificial material for the fabrication of ultra-high aspect-ratio and highly flexible M-CP cilia. Microfluidic devices using these actuators show improved performances in their respective fields when compared with existing designs. Microfluidic mixers with 8 cilia show a reduction in mixing time of up to 63 times over diffusion. Flap-based valve arrays effectively switch flows between two microfluidic channels using an array of two valves, and effectively perform as on-off switches for flow control. A valve with a 2.3 mm flap thickness, actuated under an 80 mT magnetic field, is capable of blocking liquid flow at a flow rate of 1 mL/min for pressures up to 9.65 kPa. Microfluidic platforms for stretching/compressing biological cells based on the hybrid M-CP/PDMS actuators achieve large and bi-directional surface deflections. Actuation can be applied cyclically, under both flow and no-flow conditions.
机译:本文提出的工作演示了将新开发的磁性复合聚合物(M-CP)与其他常用的聚合物微流体材料相结合的方法,以创建复杂的全聚合物微流体系统。为了实现完全集成的微流体系统,开发了用于集成M-CP结构的新制造技术。利用新的M-CP材料和新颖的制造技术,开发了三种类型的执行器:纤毛,襟翼和混合型M-CP / PDMS执行器。所有三个执行器均采用兼容的材料,制造技术和执行机构。这些执行器的性能针对不同的应用进行了表征:基于纤毛的混合器,基于襟翼的阀和用于在细胞单层上施加细胞外刺激的混合M-CP / PDMS执行器。这些应用中的每一个的致动器都是通过较小的外部磁场来驱动的。这些新型执行器中使用的M-CP由嵌入聚二甲基硅氧烷中的稀土磁性微粒(5-10微米)组成。 M-CP被图案化为大力,大行程的执行器。不带磁性颗粒的聚合物基质被用作无源部件的基材,从而促进了磁性和非磁性材料的集成。兼容的制造技术包括用于混合M-CP / PDMS执行器的改进的软光刻技术,用于M-CP薄层微图案化的通过荫罩进行丝网印刷以及使用聚乙二醇(PEG)的新颖制造技术)作为制造超高纵横比和高度柔性M-CP纤毛的牺牲材料。与现有设计相比,使用这些致动器的微流体装置在各自领域中表现出改进的性能。具有8个纤毛的微流体混合器显示,与扩散相比,混合时间最多可减少63倍。基于襟翼的阀阵列使用两个阀的阵列有效地在两个微流体通道之间切换流量,并有效地用作流量控制的开关。在80 mT磁场下致动的阀瓣厚度为2.3 mm的阀能够在压力高达9.65 kPa的情况下以1 mL / min的流速阻塞液体。基于混合M-CP / PDMS执行器的用于拉伸/压缩生物细胞的微流体平台可实现较大的双向表面偏转。可以在流动和无流动条件下循环施加致动。

著录项

  • 作者

    Rahbar Mona;

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  • 年度 2016
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