CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, CAS Center for Excellence in Nanoscience, Technical Institute of Physics and Chemistry , Chinese Academy of Sciences , Beijing 100190 , P. R. China.
Division of Nanomaterials & Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, CAS Center for Excellence in Nanoscience, Collaborative Innovation Center of Suzhou Nano Science and Technology, Department of Chemistry , University of Science and Technology of China , Hefei 230026 , China.
Langmuir. 2018 Mar 6;34(9):2942-2951. doi: 10.1021/acs.langmuir.7b03813. Epub 2018 Feb 23.
Like their biogenic counterparts, synthetic minerals with hierarchical architectures should exhibit multiple structural functions, which nicely bridge the boundaries between engineering and functional materials. Nevertheless, design of bioinspired mineralization approaches to thin coatings with distinct micro/nanotextures remains challenging in the realm of materials chemistry. Herein, a general morphosynthetic method based on seeded mineralization was extended to achieve prismatic-type thin CaCO coatings on fibrous substrates for oil/water separation applications. Distinct micro/nanotextures of the overlayers could be obtained in mineralization processes in the presence of different soluble (bio)macromolecules. These hierarchical thin coatings therefore exhibit multiple structural functions including underwater superoleophobicity, ultralow adhesion force of oil in water, and comparable stiffness/strength to the prismatic-type biominerals found in mollusk shells. Moreover, this controllable approach could proceed on fibrous substrates to obtain robust thin coatings, so that a modified nylon mesh could be employed for oil/water separation driven by gravity. Our bioinspired approach based on seeded mineralization opens the door for the deposition of hierarchical mineralized thin coatings exhibiting multiple structural functions on planar and fibrous substrates. This bottom-up strategy could be readily extended for the syntheses of advanced thin coatings with a broad spectrum of engineering and functional constituents.
与生物源类似物一样,具有分级结构的合成矿物应该表现出多种结构功能,这很好地连接了工程和功能材料之间的界限。然而,在材料化学领域,设计具有独特微/纳米结构的仿生矿化方法来制备薄涂层仍然具有挑战性。在此,基于种子诱导矿化的一般形态合成方法被扩展到在纤维基底上实现棱柱型 CaCO 薄涂层,用于油水分离应用。在存在不同可溶性(生物)大分子的矿化过程中,可以获得不同的微/纳米结构。因此,这些分级薄涂层具有多种结构功能,包括水下超疏油性、水中油的超低附着力,以及与在软体动物壳中发现的棱柱型生物矿化材料相当的刚度/强度。此外,这种可控方法可以在纤维基底上进行,以获得坚固的薄涂层,从而可以使用改性的尼龙网在重力作用下进行油水分离。我们基于种子诱导矿化的仿生方法为在平面和纤维基底上沉积具有多种结构功能的分级矿化薄涂层开辟了道路。这种自下而上的策略可以很容易地扩展到具有广泛工程和功能成分的先进薄涂层的合成。