Department of Mechanical Engineering, The University of Hong Kong, Hong Kong 999077, China.
HKU-Zhejiang Institute of Research and Innovation (HKU-ZIRI), Hangzhou 311300, Zhejiang, China.
ACS Nano. 2021 May 25;15(5):7907-7930. doi: 10.1021/acsnano.0c08898. Epub 2021 Apr 28.
Our knowledge on spider silks shows the importance of joining heterogeneous structures and surface chemical compositions in preparing fibers, fibrous surfaces, and 3D materials with a controllable wettability. We start our review with spider silk and proceed to the historical development of nature-inspired spinning processes, their products, and their advantages and disadvantages. Relevant wetting states are then summarized in fiber-based systems. Recent applications are reviewed, including one-dimensional spindle-knotted fibers for highly efficient fog harvesting, long-distance transport, and stimulus-responsive wettability and two-dimensional spindle-knotted fibrous systems for water collection, functional surfaces, and filtration. Finally, we offer some perspective on future research trends regarding biomimetic fibers for wetting-controlled engineering.
我们对蜘蛛丝的了解表明,在制备具有可控润湿性的纤维、纤维表面和 3D 材料时,将异质结构和表面化学成分结合起来的重要性。我们从蜘蛛丝开始综述,然后介绍受自然启发的纺丝工艺的历史发展、它们的产物及其优缺点。接着总结了纤维基体系中的相关润湿状态。综述了最近的应用,包括用于高效雾收集、长距离传输以及刺激响应润湿性的一维纺锤结纤维和用于水收集、功能表面和过滤的二维纺锤结纤维系统。最后,我们对受仿生纤维控制的用于润湿工程的未来研究趋势提出了一些看法。