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增强液滴在有线和弯曲超疏水叶片上的沉积

Enhancing Droplet Deposition on Wired and Curved Superhydrophobic Leaves.

作者信息

Song Meirong, Hu Duan, Zheng Xianfu, Wang Lixia, Yu Zhilun, An Wankai, Na Risong, Li Chuxin, Li Ning, Lu Zhouhui, Dong Zhichao, Wang Yilin, Jiang Lei

机构信息

College of Science , Henan Agricultural University , Zhengzhou , Henan 450002 , P.R. China.

CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences Future Technology College , University of Chinese Academy of Sciences, Chinese Academy of Sciences , Beijing 100190 , P.R. China.

出版信息

ACS Nano. 2019 Jul 23;13(7):7966-7974. doi: 10.1021/acsnano.9b02457. Epub 2019 Jul 3.

Abstract

Droplet deposition on superhydrophobic surfaces has been a great challenge owing to the shortness of the impact contact time. Despite recent research progress regarding flat superhydrophobic surfaces, improving deposition on ubiquitous wired and curved superhydrophobic leaves remains challenging as their surface structures promote asymmetric impacts, thereby shortening the contact times and increasing the likelihood of droplet splitting. Here, we propose a strategy to solve the deposition problems based on an analysis of the impact dynamics and a rational selection of additives. Combining the prominent extension property of flexible polymers with surface tension reduction of the surfactant, the well-chosen binary additives cooperatively solve retention and coverage problems by limiting the fragment and enhancing local pinning and wetting processes at a very low usage. This work advances the understanding of droplet deposition by rationally selecting additives based on the impact dynamics, which is believed to be useful in a variety of spraying, coating, and printing applications.

摘要

由于撞击接触时间短,液滴在超疏水表面上的沉积一直是一个巨大的挑战。尽管最近在平坦超疏水表面方面有了研究进展,但要改善液滴在普遍存在的有线和弯曲超疏水叶片上的沉积仍然具有挑战性,因为它们的表面结构会促进不对称撞击,从而缩短接触时间并增加液滴分裂的可能性。在此,我们基于对撞击动力学的分析和添加剂的合理选择,提出一种解决沉积问题的策略。通过将柔性聚合物的显著延伸特性与表面活性剂降低表面张力的作用相结合,精心选择的二元添加剂以极低的用量协同解决了保留和覆盖问题,其方式是限制碎片形成并增强局部钉扎和润湿过程。这项工作通过基于撞击动力学合理选择添加剂,推进了对液滴沉积的理解,相信这在各种喷涂、涂层和印刷应用中都将是有用的。

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