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具有防污和油水分离性能的超疏水导电泡沫材料。

Superhydrophobic and Conductive Foams with Antifouling and Oil-Water Separation Properties.

作者信息

Ozkan Ekrem, Garren Mark, Manuel James, Douglass Megan, Devine Ryan, Mondal Arnab, Kumar Anil, Ashcraft Morgan, Pandey Rashmi, Handa Hitesh

机构信息

School of Chemical, Materials and Biomedical Engineering, College of Engineering, University of Georgia, Athens, Georgia 30602, United States.

Pharmaceutical and Biomedical Sciences Department, College of Pharmacy, University of Georgia, Athens, Georgia 30602, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 8;15(5):7610-7626. doi: 10.1021/acsami.2c22180. Epub 2023 Jan 26.

Abstract

Hybrid organic-inorganic materials are attracting enormous interest in materials science due to the combination of multiple advantageous properties of both organic and inorganic components. Taking advantage of a simple, scalable, solvent-free hard-sacrificial method, we report the successful fabrication of three-dimensional hybrid porous foams by integrating two types of fillers into a poly(dimethylsiloxane) (PDMS) framework. These fillers consist of hydrophobic electrically conductive graphene (GR) nanoplatelets and hydrophobic bactericidal copper (Cu) microparticles. The fillers were utilized to create the hierarchical rough structure with low-surface-energy properties on the PDMS foam surfaces, leading to remarkable superhydrophobicity/superoleophilicity with contact angles of 158 and 0° for water and oil, respectively. The three-dimensional interconnected porous foam structures facilitated high oil adsorption capacity and excellent reusability as well as highly efficient oil/organic solvent-water separation in turbulent, corrosive, and saline environments. Moreover, the introduction of the fillers led to a significant improvement in the electrical conductivity and biofouling resistance (vs whole blood, fibrinogen, platelet cells, and ) of the foams. We envision that the developed composite strategy will pave a facile, scalable, and effective way for fabricating novel multifunctional hybrid materials with ideal properties that may find potential use in a broad range of biomedical, energy, and environmental applications.

摘要

由于有机和无机组分的多种有利特性相结合,有机-无机杂化材料在材料科学领域引起了极大的关注。利用一种简单、可扩展的无溶剂硬牺牲法,我们报道了通过将两种类型的填料整合到聚二甲基硅氧烷(PDMS)骨架中成功制备三维杂化多孔泡沫材料。这些填料由疏水性导电石墨烯(GR)纳米片和疏水性杀菌铜(Cu)微粒组成。这些填料被用于在PDMS泡沫表面创建具有低表面能特性的分级粗糙结构,从而分别实现了对水和油的显著超疏水性/超亲油性,水和油的接触角分别为158°和0°。三维相互连接的多孔泡沫结构促进了高吸油能力和优异的可重复使用性,以及在湍流、腐蚀性和含盐环境中的高效油/有机溶剂-水分离。此外,填料的引入显著提高了泡沫材料的导电性和抗生物污染性(相对于全血、纤维蛋白原、血小板细胞等)。我们设想,所开发的复合策略将为制造具有理想性能的新型多功能杂化材料铺平一条简便、可扩展且有效的道路,这些材料可能在广泛的生物医学、能源和环境应用中找到潜在用途。

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