Maltezos George, Garcia Erika, Hanrahan Grady, Gomez Frank A, Vyawahare Saurabh, van Dam R Michael, Chen Yan, Scherer Axel
Electrical Engineering and Applied Physics, California Institute of Technology, Pasadena, CA 91125, USA.
Lab Chip. 2007 Sep;7(9):1209-11. doi: 10.1039/b705031c. Epub 2007 Jul 9.
A current problem in microfluidics is that poly(dimethylsiloxane) (PDMS), used to fabricate many microfluidic devices, is not compatible with most organic solvents. Fluorinated compounds are more chemically robust than PDMS but, historically, it has been nearly impossible to construct valves out of them by multilayer soft lithography (MSL) due to the difficulty of bonding layers made of "non-stick" fluoropolymers necessary to create traditional microfluidic valves. With our new three-dimensional (3D) valve design we can fabricate microfluidic devices from fluorinated compounds in a single monolithic layer that is resistant to most organic solvents with minimal swelling. This paper describes the design and development of 3D microfluidic valves by molding of a perfluoropolyether, termed Sifel, onto printed wax molds. The fabrication of Sifel-based microfluidic devices using this technique has great potential in chemical synthesis and analysis.
微流控技术当前面临的一个问题是,用于制造许多微流控设备的聚二甲基硅氧烷(PDMS)与大多数有机溶剂不相容。含氟化合物在化学性质上比PDMS更稳定,但从历史上看,由于难以通过多层软光刻(MSL)用“不粘”含氟聚合物制成的层来构建阀门,而这些层是制造传统微流控阀门所必需的,所以几乎不可能用它们制造阀门。通过我们新的三维(3D)阀门设计,我们可以在单个整体层中用含氟化合物制造微流控设备,该层对大多数有机溶剂具有抗性且溶胀最小。本文描述了通过将一种称为Sifel的全氟聚醚模塑到印刷蜡模上来设计和开发3D微流控阀门。使用该技术制造基于Sifel的微流控设备在化学合成和分析方面具有巨大潜力。