Mumm Florian, van Helvoort Antonius T J, Sikorski Pawel
Department of Physics, Norwegian University of Science and Technology, Høgskoleringen 5, Trondheim NO-7491, Norway.
ACS Nano. 2009 Sep 22;3(9):2647-52. doi: 10.1021/nn900607p.
Droplet-based microfluidic systems are an expansion of the lab on a chip concept toward flexible, reconfigurable setups based on the modification and analysis of individual droplets. Superhydrophobic surfaces are one suitable candidate for the realization of droplet-based microfluidic systems as the high mobility of aqueous liquids on such surfaces offers possibilities to use novel or more efficient approaches to droplet movement. Here, copper-based superhydrophobic surfaces were produced either by the etching of polycrystalline copper samples along the grain boundaries using etchants common in the microelectronics industry, by electrodeposition of copper films with subsequent nanowire decoration based on thermal oxidization, or by a combination of both. The surfaces could be easily hydrophobized with thiol-modified fluorocarbons, after which the produced surfaces showed a water contact angle as high as 171 degrees +/- 2 degrees . As copper was chosen as the base material, established patterning techniques adopted from printed circuit board fabrication could be used to fabricate macrostructures on the surfaces with the intention to confine the droplets and, thus, to reduce the system's sensitivity to tilting and vibrations. A simple droplet-based microfluidic chip with inlets, outlets, sample storage, and mixing areas was produced. Wire guidance, a relatively new actuation method applicable to aqueous liquids on superhydrophobic surfaces, was applied to move the droplets.
基于液滴的微流控系统是芯片实验室概念向基于单个液滴的改性和分析的灵活、可重构设置的扩展。超疏水表面是实现基于液滴的微流控系统的合适候选材料,因为水性液体在此类表面上的高流动性为使用新颖或更高效的液滴移动方法提供了可能性。在此,铜基超疏水表面可通过使用微电子工业中常见的蚀刻剂沿晶界蚀刻多晶铜样品、通过电沉积铜膜并随后基于热氧化进行纳米线修饰或通过两者结合来制备。这些表面可用硫醇改性的碳氟化合物轻松疏水化,之后所制备的表面显示出高达171度±2度的水接触角。由于选择铜作为基础材料,因此可以采用从印刷电路板制造中采用的既定图案化技术在表面上制造宏观结构,以限制液滴,从而降低系统对倾斜和振动的敏感度。制作了一个具有入口、出口、样品储存和混合区域的简单的基于液滴的微流控芯片。线引导是一种适用于超疏水表面上水性液体的相对较新的驱动方法,用于移动液滴。