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疏水性纤维阵列对人眼睫毛上的水进行快速排水。

Rapid water drainage on human eyelashes of a hydrophobic fiber array.

作者信息

Zhou Shan, Chen Fenglin, Cheng Ziyang, Gao Can, He Zengyi, Wang Shutao, Jiang Lei, Dai Haoyu, Dong Zhichao

机构信息

CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, China.

School of Future Technology, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Sci Adv. 2024 Dec 20;10(51):eadr2135. doi: 10.1126/sciadv.adr2135.

Abstract

Numerous organisms exploit asymmetrical capillary forces generated by unique fiber or asymmetrical tapered structures to rapidly eliminate undesired liquid for survival in moist or rainy habitats. Human eyelashes, the primary protector of eyes, use a yet-to-be-fully-understood mechanism to efficiently transfer incoming liquid for vision safeguarding. Here, we elucidate that human eyelashes featuring a hydrophobic curved flexible fiber array with surface micro-ratchet and macro-curvature approximating the is adept at directionally and rapidly expelling incoming liquid to maintain clear vision. These structural attributes are sequentially used for liquid drainage, starting from anisotropic retention via micro-ratchet, followed by the elastic expulsion among deflected hydrophobic flexible fiber arrays and culminating in the fastest sliding off along a path, which together reduce the contact time by about 20% of that on rigid linear slopes. Investigating the intricate relationship between multistructure and draining efficiency of human eyelashes may inspire the design of advanced liquid-repelling edges on outdoor devices to maintain dryness.

摘要

许多生物体利用独特纤维或不对称锥形结构产生的不对称毛细作用力,在潮湿或多雨的栖息地中迅速排出不需要的液体以生存。人类睫毛作为眼睛的主要保护者,采用一种尚未完全理解的机制来有效地转移进入的液体以保护视力。在这里,我们阐明了具有疏水弯曲柔性纤维阵列且表面微棘轮和宏观曲率近似为 的人类睫毛,擅长定向且快速地排出进入的液体以保持清晰视力。这些结构属性依次用于液体排放,从通过微棘轮的各向异性保留开始,接着是在偏转的疏水柔性纤维阵列之间的弹性排出,最终沿着 路径最快滑落,这共同将接触时间减少至约为刚性线性斜坡上接触时间的20%。研究人类睫毛的多结构与排水效率之间的复杂关系,可能会启发户外设备上先进拒液边缘的设计以保持干燥。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a0cc/11661455/ceef86df1585/sciadv.adr2135-f1.jpg

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