Ritsumeikan Global Innovation Research Organization, Ritsumeikan University, Kusatsu, Shiga, Japan.
Lab Chip. 2011 Feb 21;11(4):639-44. doi: 10.1039/c0lc00394h. Epub 2010 Dec 2.
This paper reports a novel combination of hydrophilic/hydrophobic materials for the evolution of liquid manipulation. Droplet generation based on a hydrophilic/hydrophobic mechanism is a promising method for highly accurate liquid manipulations. Although several droplet manipulation devices utilizing hydrophilic/hydrophobic patterns have been reported, it has been difficult to split fluid into droplets solely through hydrophilic/hydrophobic patterns in a microchannel. In this study, a material combination for fabricating hydrophilic/hydrophobic patterns was investigated and their wettability difference was enhanced for droplet generation. To improve hydrophilicity, we attempted to increase the surface area of silicon oxide through pulsed plasma chemical vapor deposition (PPCVD). To improve hydrophobicity, the damage to the hydrophobic patterns in the fabrication process was reduced. We successfully enhanced the difference in contact angles from 54.3° to 86.6° by combining the developed hydrophilic material and hydrophobic material. The developed material combination could successfully split fluid into a quantitative droplet of 14.1 nL in a microfluidic chip. Because the developed hydrophilic/hydrophobic combination enables the formation of a droplet with desirable shape in microchannels, the developed hydrophilic/hydrophobic combination is a promising component for lab-on-a-chip applications.
本文报道了一种新颖的亲水/疏水材料组合,用于液滴操控的发展。基于亲水/疏水机制的液滴生成是一种用于高度精确的液体操控的很有前途的方法。尽管已经报道了几种利用亲水/疏水图案的液滴操控装置,但在微通道中仅通过亲水/疏水图案将流体分离成液滴一直很困难。在本研究中,研究了用于制造亲水/疏水图案的材料组合,并增强了它们的润湿性差异以产生液滴。为了提高亲水性,我们试图通过脉冲等离子体化学气相沉积(PPCVD)来增加氧化硅的表面积。为了提高疏水性,减少了制造过程中对疏水图案的损坏。我们通过组合开发的亲水材料和疏水材料,成功地将接触角的差异从 54.3°提高到 86.6°。开发的材料组合可以在微流控芯片中将流体成功地分离成 14.1 nL 的定量液滴。由于开发的亲水/疏水组合能够在微通道中形成具有理想形状的液滴,因此开发的亲水/疏水组合是用于芯片实验室应用的有前途的组件。