Jung Yushin, Lee Howon, Park Tae-Joon, Kim Sungsik, Kwon Sunghoon
Institutes of Entrepreneurial BioConvergence, Seoul National University, Seoul 151-742, South Korea.
Department of Electrical and Computer Engineering, Seoul National University, Seoul 151-744, South Korea.
Sci Rep. 2015 Oct 22;5:15629. doi: 10.1038/srep15629.
The demand for patterning functional materials precisely on surfaces of stimuli-responsive devices has increased in many research fields. In situ polymerization technology is one of the most convenient ways to place the functional materials on a desired location with micron-scale accuracy. To fabricate stimuli-responsive surfaces, controlling concentration of the functional material is much as important as micropatterning them. However, patterning and controlling concentration of the functional materials simultaneously requires an additional process, such as preparing multiple co-flow microfluidic structures and numbers of solutions with various concentrations. Despite applying these processes, fabricating heterogeneous patterns in large scale (millimeter scale) is still impossible. In this study, we propose an advanced in situ polymerization technique to pattern the surface in micron scale in a concentration-controlled manner. Because the concentration of the functional materials is manipulated by self-assembly on the surface, a complex pattern could be easily fabricated without any additional procedure. The complex pattern is pre-designed with absorption amount of the functional material, which is pre-determined by the duration of UV exposure. We show that the resolution reaches up to 2.5 μm and demonstrate mm-scale objects, maintaining the same resolution. We also fabricated Multi-bit barcoded micro particles verify the flexibility of our system.
在许多研究领域,对在刺激响应设备表面精确图案化功能材料的需求不断增加。原位聚合技术是将功能材料以微米级精度放置在所需位置的最便捷方法之一。为了制造刺激响应表面,控制功能材料的浓度与对其进行微图案化同样重要。然而,同时对功能材料进行图案化和控制浓度需要额外的工艺,例如制备多个共流微流体结构以及多种不同浓度的溶液。尽管应用了这些工艺,但大规模(毫米级)制造异质图案仍然是不可能的。在本研究中,我们提出了一种先进的原位聚合技术,以浓度可控的方式在微米尺度上对表面进行图案化。由于功能材料的浓度是通过表面自组装来控制的,因此无需任何额外程序即可轻松制造复杂图案。复杂图案是根据功能材料的吸收量预先设计的,而吸收量由紫外线照射时间预先确定。我们表明分辨率可达2.5μm,并展示了毫米级物体,保持了相同的分辨率。我们还制造了多位条形码微粒,以验证我们系统的灵活性。