Physical Intelligence Department, Max Planck Institute for Intelligent Systems, Max Planck ETH Center for Learning Systems, Heisenbergstr. 3, 70569 Stuttgart, Germany.
Department of Electrical Engineering and Automation, School of Electrical Engineering, Aalto University, Otaniementie 17, 02150 Espoo, Finland.
Soft Matter. 2017 Jan 4;13(2):304-327. doi: 10.1039/c6sm02078j.
Surface tension-driven self-alignment is a passive and highly-accurate positioning mechanism that can significantly simplify and enhance the construction of advanced microsystems. After years of research, demonstrations and developments, the surface engineering and manufacturing technology enabling capillary self-alignment has achieved a degree of maturity conducive to a successful transfer to industrial practice. In view of this transition, a broad and accessible review of the physics, material science and applications of capillary self-alignment is presented. Statics and dynamics of the self-aligning action of deformed liquid bridges are explained through simple models and experiments, and all fundamental aspects of surface patterning and conditioning, of choice, deposition and confinement of liquids, and of component feeding and interconnection to substrates are illustrated through relevant applications in micro- and nanotechnology. A final outline addresses remaining challenges and additional extensions envisioned to further spread the use and fully exploit the potential of the technique.
表面张力驱动的自对准是一种被动且高精度的定位机制,可以显著简化和增强先进微系统的构建。经过多年的研究、演示和开发,实现毛细自对准的表面工程和制造技术已经达到了有利于成功向工业实践转移的成熟程度。鉴于这种转变,本文对毛细自对准的物理、材料科学和应用进行了广泛而易于理解的综述。通过简单的模型和实验解释了变形液桥自对准动作的静态和动态,并且通过微纳技术中的相关应用说明了表面图案化和调节、液体的选择、沉积和限制以及组件与基板的馈送和互连的所有基本方面。最后概述了剩余的挑战和预期的扩展,以进一步推广和充分利用该技术的潜力。