Chang Bo, Zhou Quan, Wu Zhigang, Liu Zhenhua, Ras Robin H A, Hjort Klas
Department of Engineering Sciences, Uppsala University, SE-75121 Uppsala, Sweden.
Department of Applied Physics, School of Science, Aalto University, FI-00076 Aalto, Finland.
Micromachines (Basel). 2016 Mar 4;7(3):41. doi: 10.3390/mi7030041.
Soft micro devices and stretchable electronics have attracted great interest for their potential applications in sensory skins and wearable bio-integrated devices. One of the most important steps in building printed circuits is the alignment of assembled micro objects. Previously, the capillary self-alignment of microchips driven by surface tension effects has been shown to be able to achieve high-throughput and high-precision in the integration of micro parts on rigid hydrophilic/superhydrophobic patterned surfaces. In this paper, the self-alignment of microchips on a patterned soft and stretchable substrate, which consists of hydrophilic pads surrounded by a superhydrophobic polydimethylsiloxane (PDMS) background, is demonstrated for the first time. A simple process has been developed for making superhydrophobic soft surface by replicating nanostructures of black silicon onto a PDMS surface. Different kinds of PDMS have been investigated, and the parameters for fabricating superhydrophobic PDMS have been optimized. A self-alignment strategy has been proposed that can result in reliable self-alignment on a soft PDMS substrate. Our results show that capillary self-alignment has great potential for building soft printed circuits.
柔软的微器件和可拉伸电子器件因其在传感皮肤和可穿戴生物集成器件中的潜在应用而备受关注。构建印刷电路最重要的步骤之一是组装微物体的对准。此前,由表面张力效应驱动的微芯片毛细管自对准已被证明能够在刚性亲水/超疏水图案化表面上的微部件集成中实现高通量和高精度。本文首次展示了微芯片在一种图案化的柔软可拉伸基板上的自对准,该基板由被超疏水聚二甲基硅氧烷(PDMS)背景包围的亲水垫组成。通过将黑硅的纳米结构复制到PDMS表面,开发了一种制备超疏水柔软表面的简单工艺。研究了不同种类的PDMS,并优化了制备超疏水PDMS的参数。提出了一种自对准策略,该策略可在柔软的PDMS基板上实现可靠的自对准。我们的结果表明,毛细管自对准在构建柔软印刷电路方面具有巨大潜力。