Epstein Department of Industrial and Systems Engineering, University of Southern California, 3715 McClintock Ave, Los Angeles, CA, 90089-01932, USA.
Department of Aerospace and Mechanical Engineering, Viterbi School of Engineering, University of Southern California, 3650 McClintock Ave, Los Angeles, CA, 90089, USA.
Adv Mater. 2018 Mar;30(9). doi: 10.1002/adma.201704912. Epub 2017 Dec 27.
Biomimetic functional surfaces are attracting increasing attention for various technological applications, especially the superhydrophobic surfaces inspired by plant leaves. However, the replication of the complex hierarchical microstructures is limited by the traditional fabrication techniques. In this paper, superhydrophobic micro-scale artificial hairs with eggbeater heads inspired by Salvinia molesta leaf was fabricated by the Immersed surface accumulation three dimensional (3D) printing process. Multi-walled carbon nanotubes were added to the photocurable resins to enhance the surface roughness and mechanical strength of the microstructures. The 3D printed eggbeater surface reveals interesting properties in terms of superhydrophobilicity and petal effect. The results show that a hydrophilic material can macroscopically behave as hydrophobic if a surface has proper microstructured features. The controllable adhesive force (from 23 μN to 55 μN) can be easily tuned with different number of eggbeater arms for potential applications such as micro hand for droplet manipulation. Furthermore, a new energy-efficient oil/water separation solution based on our biomimetic structures was demonstrated. The results show that the 3D-printed eggbeater structure could have numerous applications, including water droplet manipulation, 3D cell culture, micro reactor, oil spill clean-up, and oil/water separation.
仿生功能表面因其在各种技术应用中的优势而受到越来越多的关注,尤其是受植物叶片启发的超疏水表面。然而,传统的制造技术限制了复杂分层微结构的复制。本文通过浸入式表面堆积三维(3D)打印工艺,制造出了受满江红叶片启发的具有打蛋器头的超疏水微尺度人工毛发。在光固化树脂中添加多壁碳纳米管来提高微结构的表面粗糙度和机械强度。3D 打印的打蛋器表面在超疏水性和花瓣效应方面表现出有趣的特性。结果表明,如果表面具有适当的微观结构特征,亲水材料可以宏观上表现出疏水性。通过改变打蛋器臂的数量,可以轻松调节可控的粘附力(从 23 μN 到 55 μN),这对于微手操控液滴等潜在应用非常有用。此外,还展示了一种基于我们仿生结构的新型节能油水分离解决方案。结果表明,3D 打印的打蛋器结构具有许多应用,包括液滴操控、3D 细胞培养、微反应器、溢油清理和油水分离。