Zhao Zhihong, Shen Yongqian, Yang Haidong, Li Jian, Guo Lin
Research Center of Gansu Military and Civilian Integration Advanced Structural Materials, College of Chemistry and Chemical Engineering , Northwest Normal University , Lanzhou 730070 , P. R. China.
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology, School of Chemistry , Beihang University , Beijing 100191 , P. R. China.
ACS Appl Mater Interfaces. 2019 Aug 7;11(31):28370-28376. doi: 10.1021/acsami.9b05812. Epub 2019 Jul 23.
Superwettable materials have been studied extensively and successfully applied in various forms liquid separation. However, because of low surface tension differences, organic liquids (OLs) exhibit approximate wettability on most of the material surfaces, and the separation of OL mixtures remains a challenge. The current separation method for OL mixtures is mainly dependent on covalent modification to precisely control the surface energy of the membranes, which is extremely complicated. Herein, we demonstrate a novel concept of underliquid superlyophobicity for the separation of immiscible OLs mixtures, which only depend on a relatively stable liquid-repellent interface. Furthermore, the minimum system's free-energy principle was used to explain this wetting behavior. Different from the previous reports, the method of separation of OL mixtures does not involve various low-surface-energy materials, thus it is facile and eco-friendly. Our research provides a general strategy for the efficient separation of immiscible OLs mixtures and is expected to promote the development of superwettable materials for multiphase liquid separation.
超润湿性材料已得到广泛研究,并成功应用于各种形式的液体分离。然而,由于表面张力差异较小,有机液体在大多数材料表面表现出近似的润湿性,有机液体混合物的分离仍然是一个挑战。目前用于有机液体混合物的分离方法主要依赖于共价修饰来精确控制膜的表面能,这极其复杂。在此,我们展示了一种用于分离不混溶有机液体混合物的新型水下超疏液概念,该概念仅依赖于相对稳定的拒液界面。此外,利用最小系统自由能原理来解释这种润湿行为。与之前的报道不同,有机液体混合物的分离方法不涉及各种低表面能材料,因此简便且环保。我们的研究为高效分离不混溶有机液体混合物提供了一种通用策略,有望推动用于多相液体分离的超润湿性材料的发展。