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A Multi-layer Technology for Biocompatible Polymer Microsystems with Integrated Fluid and Electrical Functionality

机译:具有综合流体和电气功能的生物相容性聚合物微系统的多层技术

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A method to fabricate biocompatible polymer microfluidic systems with integrated electrical and fluid functionality has been established. The process flow utilizes laser ablation, microstenciling, and heat staking as the techniques to realize multi-layered polyimide based microsystems with microchannels, thru and embedded fluid / electrical vias, and metallic electrodes and contact pads. As an application of the fabrication technology, a six layer multifunctional cellular analysis system has been demonstrated. The electrophysiological analysis system contains fluid microchannel / via networks for cell positioning and chemical delivery as well as electrical detectors and electrodes for impedance spectroscopy and patch clamping studies. Multiple layers of 50.8μm thick Kapton sheets with double-sided polyimide adhesive layers were used as the primary material-of-construction. Microchannels with widths of 400μm as well as thru hole vias with 3.71μm diameters (aspect ratios of over 12:1) were laser ablated through the polyimide sheets using an excimer laser and a CO_2 laser. Electrical traces and contact pads with features down to 20μm were defined on the flexible polyimide sheets using microstenciling. The patterned layers were bonded using heat staking at a temperature of 35O°C, a pressure of 1.65MPa for 60 minutes. This multi-layer technology can be used to create microfluidic devices for many application areas requiring biocompatibility, relatively high temperature operation, or a flexible substrate material.
机译:建立了制造具有集成电和流体功能的生物相容性聚合物微流体系统的方法。该过程流利用激光消融,微管状和热铆接作为实现具有微通道,通过微型流体/电通孔和金属电极和接触垫的多层聚酰亚胺基微系统的技术。作为制造技术的应用,已经证明了六层多功能蜂窝分析系统。电生理分析系统包含用于细胞定位和化学输送的流体微通道/通过网络以及阻抗光谱和贴片夹紧研究的电检测器和电极。使用双面聚酰亚胺粘合剂层的多层50.8μm厚的Kapton板材作为初级材料结构。宽度为400μm的微通道以及通过3.71μm直径(超过12:1的宽高比)的微通孔通过聚酰亚胺片和CO_2激光激发通过聚酰亚胺片。使用微磁铁的柔性聚酰亚胺板在柔性聚酰亚胺板上定义了具有下降至20μm的电迹和接触垫。使用350℃的温度,压力为1.65MPa的温度,将图案化层粘合60分钟。该多层技术可用于为需要生物相容性,相对高的温度操作或柔性基板材料的许多应用领域创造微流体装置。

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