Zhang Qiuya, Li Yan, Yan Yufeng, Zhang Xiaofang, Tian Dongliang, Jiang Lei
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology, School of Chemistry, Beihang University, Beijing 100191, P.R. China.
School of Mathematics and Physics, University of Science and Technology Beijing, Beijing 100083, P.R. China.
ACS Nano. 2020 Jun 23;14(6):7287-7296. doi: 10.1021/acsnano.0c02558. Epub 2020 Jun 4.
The ability to allow microliquid to penetrate in one direction but block in the opposite direction plays an irreplaceable role in intelligent liquid management. Despite much progress toward facilitating directional transport by multilayer porous membranes with opposite wettability, it remains difficult to achieve a highly multifunctional flexible membrane for highly efficient unidirectional liquid transport in different situations. Herein, a superhydrophilic-hydrophilic self-supported monolayered porous poly(ether sulfone) (PES) membrane with special nano- and micropores at opposite surfaces is demonstrated, which can be used for unidirectional liquid transport. The results reveal that the competition of liquid spreading and permeation is critical to achieve directional liquid transport. The porous PES membrane, transformed with 70 vol % of ethanol in water (E/W-PES-70%), exhibits continuous unidirectional liquid penetration and antigravity unidirectional ascendant in a large range of pH values and can be used as "liquid diode" for moisture wicking. Moreover, the PES membrane can be prepared in a large area with excellent flexibility at room and liquid nitrogen temperature, indicating great promise in harsh environments. This work will provide an avenue for designing porous materials and smart dehumidification materials, which have promising applications in biomedical materials, advanced functional textiles, engineered desiccant materials, .
使微液体能够单向渗透而反向阻断的能力在智能液体管理中发挥着不可替代的作用。尽管在利用具有相反润湿性的多层多孔膜促进定向传输方面取得了很大进展,但要实现一种用于在不同情况下高效单向液体传输的高度多功能柔性膜仍然很困难。在此,展示了一种具有超亲水性-亲水性自支撑单层多孔聚醚砜(PES)膜,其相对表面具有特殊的纳米和微孔,可用于单向液体传输。结果表明,液体铺展和渗透的竞争对于实现定向液体传输至关重要。用70体积%乙醇/水(E/W-PES-70%)转化的多孔PES膜在大范围pH值下表现出连续的单向液体渗透和抗重力单向上升,可作为吸湿的“液体二极管”。此外,PES膜可以在大面积制备,在室温和液氮温度下具有优异的柔韧性,在恶劣环境中显示出巨大潜力。这项工作将为设计多孔材料和智能除湿材料提供一条途径,这些材料在生物医学材料、先进功能纺织品、工程干燥剂材料等方面具有广阔的应用前景。