Zhou Hui, Jing Xueshan, Guo Zhiguang
Hubei Collaborative Innovation Centre for Advanced Organic Chemical Materials and Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei University, Wuhan 430062, People's Republic of China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, People's Republic of China.
Langmuir. 2020 Jun 23;36(24):6801-6810. doi: 10.1021/acs.langmuir.0c00987. Epub 2020 Jun 12.
Inspired by a cactus spine and pitcher plant slippery surface, a strategy is proposed to design a superhydrophobic-hydrophilic conical copper needle (SHB-HL CCN) and hydrophilic slippery rough surface (SRS) integrative system. In this strategy, the SHB-HL CCN was inserted vertically on the hydrophilic SRS, and such a hydrophilic SRS + SHB-HL CCN system exhibited a high-efficiency cycle in droplet capture-coalescence (supply)-transport during the fog collection process. Even with a single SHB-HL CCN or hydrophilic SRS, the water collection rate is much higher than that of the usual materials (original copper needle, superhydrophobic substrate, hydrophobic SRS, etc.). It is demonstrated that a newly enhanced fog harvesting mechanism and higher fog collection rate can be realized due to the synergy between the Laplace pressure difference from the conical needle, wettability force of wettability difference in the conical copper needles, and released surface energy in droplet coalescence in addition to the attracting force from water bridges formed between needles and substrate. Compared with a single SHB-HL CCN and hydrophilic SRS, the water collection rate of the hydrophilic SRS + SHB-HL CCN system increased by approximately 328 and 152%, respectively. This fog collector provides direction to design water harvesting systems, which has important promotion significance for water collection application engineering in industry, aerospace, and other fields.
受仙人掌刺和猪笼草光滑表面的启发,提出了一种设计超疏水-亲水锥形铜针(SHB-HL CCN)和亲水光滑粗糙表面(SRS)一体化系统的策略。在该策略中,将SHB-HL CCN垂直插入亲水SRS上,这种亲水SRS + SHB-HL CCN系统在雾收集过程中的液滴捕获-聚结(供应)-传输方面表现出高效循环。即使是单个SHB-HL CCN或亲水SRS,其集水率也远高于普通材料(原始铜针、超疏水基底、疏水SRS等)。结果表明,除了针与基底之间形成的水桥的吸引力外,由于锥形针的拉普拉斯压差、锥形铜针润湿性差异的润湿性力以及液滴聚结时释放的表面能之间的协同作用,可以实现一种新的增强型雾收集机制和更高的雾收集率。与单个SHB-HL CCN和亲水SRS相比,亲水SRS + SHB-HL CCN系统的集水率分别提高了约328%和152%。这种雾收集器为集水系统的设计提供了方向,对工业、航空航天等领域的集水应用工程具有重要的推广意义。