Hu Songtao, Cao Xiaobao, Reddyhoff Tom, Puhan Debashis, Vladescu Sorin-Cristian, Wang Jing, Shi Xi, Peng Zhike, deMello Andrew J, Dini Daniele
State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China.
Department of Chemistry and Applied Biosciences, ETH Zurich, Zurich 8093, Switzerland.
Sci Adv. 2020 Aug 5;6(32):eaba9721. doi: 10.1126/sciadv.aba9721. eCollection 2020 Aug.
Artificial liquid-repellent surfaces have attracted substantial scientific and industrial attention with a focus on creating functional topological features; however, the role of the underlying structures has been overlooked. Recent developments in micro-nanofabrication allow us now to construct a skin-muscle type system combining interfacial liquid repellence atop a mechanically functional structure. Specifically, we design surfaces comprising bioinspired, mushroom-like repelling heads and spring-like flexible supports, which are realized by three-dimensional direct laser lithography. The flexible supports elevate liquid repellency by resisting droplet impalement and reducing contact time. This, previously unknown, use of spring-like flexible supports to enhance liquid repellency provides an excellent level of control over droplet manipulation. Moreover, this extends repellent microstructure research from statics to dynamics and is envisioned to yield functionalities and possibilities by linking functional surfaces and mechanical metamaterials.
人工拒液表面因致力于创造功能性拓扑特征而吸引了大量科学和工业领域的关注;然而,底层结构的作用却被忽视了。微纳制造技术的最新进展使我们现在能够构建一种皮肤-肌肉型系统,该系统在机械功能结构之上兼具界面拒液性。具体而言,我们设计的表面包含受生物启发的蘑菇状排斥头和弹簧状柔性支撑结构,这些通过三维直接激光光刻技术得以实现。柔性支撑结构通过抵抗液滴刺入并减少接触时间来提高拒液性。这种此前未知的利用弹簧状柔性支撑结构增强拒液性的方法,为液滴操控提供了出色的控制水平。此外,这将拒液微观结构的研究从静态扩展到了动态,并有望通过将功能表面与机械超材料相联系而产生新的功能和可能性。