Ren Baona, Pi Haohong, Zhao Xin, Hu Miaomiao, Zhang Xiuqin, Wang Rui, Wu Jing
Beijing Key Laboratory of Clothing Materials R & D and Assessment, Beijing Engineering Research Center of Textile Nanofiber, School of Materials Design & Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China.
Nanoscale. 2021 May 27;13(20):9354-9363. doi: 10.1039/d1nr01120k.
Fresh water scarcity has become a crisis affecting human survival and development. Atmospheric water capture with remarkable advantages such as energy-independence and low-cost is supposed to be a promising way to address the problem. Herein, a facile strategy is presented to design a membrane material with efficient atmospheric water capture capacity and high practical significancy. A hybrid Janus membrane with anisotropic wettability and morphology is fabricated by integrating electrospinning and in situ surface oxidation methods. Taking advantage of the anisotropic wettability and strong force provided by directional wicking to draw water drops from a hydrophobic to a hydrophilic layer, the Janus membrane exhibits novel directional water droplet transport and possesses efficient and excellent atmospheric water capture capacity. Janus membrane with larger pores in the hydrophobic layer shows higher atmospheric water capture capacity than that with smaller pores. Furthermore, the hybrid Janus membrane is successfully implemented in soil water retention in the plant cultivation process. This work provides an insight into the facile design of the Janus membrane for fresh water capture, which is important to extend its practical applications.
淡水短缺已成为影响人类生存与发展的危机。大气取水具有能源独立和低成本等显著优势,被认为是解决该问题的一种有前景的方法。在此,我们提出一种简便策略来设计具有高效大气取水能力和高实际意义的膜材料。通过整合静电纺丝和原位表面氧化方法制备了一种具有各向异性润湿性和形态的混合Janus膜。利用各向异性润湿性和定向毛细作用提供的强力将水滴从疏水层吸引到亲水层,Janus膜展现出新颖的定向水滴传输,并具有高效且优异的大气取水能力。疏水层孔隙较大的Janus膜比孔隙较小的Janus膜具有更高的大气取水能力。此外,这种混合Janus膜在植物栽培过程中的土壤保水方面得到了成功应用。这项工作为用于淡水捕获的Janus膜的简便设计提供了思路,这对于扩展其实际应用具有重要意义。