UPM Product Development Lab, Mechanical Engineering Department, Universidad Politécnica de Madrid, c/José Gutiérrez Abascal 2, 28006 Madrid, Spain.
Bioinspir Biomim. 2017 Oct 16;12(6):066004. doi: 10.1088/1748-3190/aa82e0.
In this study we present the combination of a math-based design strategy with direct laser writing as high-precision technology for promoting solid free-form fabrication of multi-scale biomimetic surfaces. Results show a remarkable control of surface topography and wettability properties. Different examples of surfaces inspired on the lotus leaf, which to our knowledge are obtained for the first time following a computer-aided design with this degree of precision, are presented. Design and manufacturing strategies towards microfluidic systems whose fluid driving capabilities are obtained just by promoting a design-controlled wettability of their surfaces, are also discussed and illustrated by means of conceptual proofs. According to our experience, the synergies between the presented computer-aided design strategy and the capabilities of direct laser writing, supported by innovative writing strategies to promote final size while maintaining high precision, constitute a relevant step forward towards materials and devices with design-controlled multi-scale and micro-structured surfaces for advanced functionalities. To our knowledge, the surface geometry of the lotus leaf, which has relevant industrial applications thanks to its hydrophobic and self-cleaning behavior, has not yet been adequately modeled and manufactured in an additive way with the degree of precision that we present here.
在这项研究中,我们提出了一种基于数学的设计策略与直接激光写入相结合的方法,作为促进多尺度仿生表面无约束自由成形的高精度技术。结果表明,该方法可以显著控制表面形貌和润湿性。我们展示了不同受荷叶启发的表面实例,据我们所知,这些实例是首次通过计算机辅助设计以如此高的精度获得的。此外,我们还讨论并通过概念验证说明了一种针对微流控系统的设计和制造策略,其流体驱动能力仅通过促进表面的设计控制润湿性来获得。根据我们的经验,所提出的计算机辅助设计策略与直接激光写入的功能之间的协同作用,辅以创新的写入策略以在保持高精度的同时促进最终尺寸,构成了朝着具有设计控制的多尺度和微结构表面的材料和器件的重要一步,以实现先进功能。据我们所知,由于其疏水和自清洁性能,荷叶的表面几何形状在工业上具有重要的应用,但迄今为止,其在添加剂制造中尚未以我们在此处展示的精度进行充分建模和制造。