Hutchison J Brian, Haraldsson K Tommy, Good Brian T, Sebra Robert P, Luo Ning, Anseth Kristi S, Bowman Christopher N
Department of Chemical and Biological Engineering, University of Colorado, Boulder, CO 80309-0424, USA.
Lab Chip. 2004 Dec;4(6):658-62. doi: 10.1039/b405985a. Epub 2004 Sep 24.
Microfluidic devices are commonly fabricated in silicon or glass using micromachining technology or elastomers using soft lithography methods; however, invariable bulk material properties, limited surface modification methods and difficulty in fabricating high aspect ratio devices prevent these materials from being utilized in numerous applications and/or lead to high fabrication costs. Contact Liquid Photolithographic Polymerization (CLiPP) was developed as an alternative microfabrication approach that uniquely exploits living radical photopolymerization chemistry to facilitate surface modification of device components, fabrication of high aspect ratio structures from many different materials with numerous covalently-adhered layers and facile construction of three-dimensional devices. This contribution describes CLiPP and demonstrates unique advantages of this new technology for microfabrication of polymeric microdevices. Specifically, the procedure for fabricating devices with CLiPP is presented, the living radical photopolymerization chemistry which enables this technology is described, and examples of devices made using CLiPP are shown.
微流控设备通常使用微加工技术在硅或玻璃中制造,或者使用软光刻方法在弹性体中制造;然而,材料的整体性质不变、表面改性方法有限以及制造高深宽比设备的困难,使得这些材料无法用于众多应用中,和/或导致制造成本高昂。接触液体光刻聚合(CLiPP)作为一种替代微制造方法而被开发出来,它独特地利用活性自由基光聚合化学来促进设备部件的表面改性,用许多不同材料制造具有多个共价粘附层的高深宽比结构,以及轻松构建三维设备。本文介绍了CLiPP,并展示了这项用于聚合物微设备微制造的新技术的独特优势。具体而言,介绍了使用CLiPP制造设备的过程,描述了实现这项技术的活性自由基光聚合化学,并展示了使用CLiPP制造的设备示例。