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Fabrication of UV-curing Polyurethane Methacrylate (PUMA) Microchannel and Fluidics Interconnect for Microfluidics Applications

机译:用于微流体应用的UV固化聚氨酯甲基丙烯酸甲酯(PUMA)微通道和流体互连的制备

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Microfluidics platform offers a great advantage in bio-sensing and clinical diagnostics miniaturization. The requirement of inexpensive and rapid-prototyping materials are essential in microfluidics device commercialization. This paper presents rapid prototyping of UV-curing Polyurethane Methacrylate (PUMA) microchannel from the Polydimethlsiloxane (PDMS) mold. Two techniques in PUMA microchannel UV-curing rapid prototyping have successfully demonstrated in this work. The first technique utilized thin film transparency sheet as PUMA resin top surface cover in facilitating PUMA UV-curing. The second method exploited confined nitrogen gas environment in Pyrex dish chamber in expediting PUMA curing under UV light exposure. In this work, two different approaches of fluidic interconnect tubings for PUMA microchannel inlet and outlet are also presented. Reversible bonding techniques using corona discharge treatment are utilized for bonding of PUMA microchannel and fluidic interconnect with PUMA, silicon, glass and PDMS substrate. Accomplishment of preliminary fluid flow testing using PUMA microchannel proved its capability for microfluidics applications.
机译:微流体平台提供在生物传感和临床诊断的小型化有很大的优势。廉价和快速原型材料的要求是在微流体设备的商业化是必不可少的。本文呈现的UV固化聚氨酯丙烯酸酯(PUMA)从Polydimethlsiloxane(PDMS)微通道模具的快速原型。在PUMA微UV固化快速成型两种技术已经成功地证明了这项工作。第一种技术利用薄膜透明度片作为PUMA树脂顶表面盖在促进PUMA UV固化。第二种方法利用了加速PUMA固化在UV光下曝光局限于氮气环境中耐热盘室中。在这项工作中,流体互连油管用于PUMA两种不同的方法的微通道的入口和出口还提出。使用电晕放电处理可逆接合技术被用于PUMA微通道和流体互连与PUMA,硅,玻璃和PDMS衬底的粘接。初步流体流量使用PUMA微测试的成绩证明了自己的微流体应用能力。

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