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基于超长陶瓷/聚合物纤维的用于高效油水乳液分离的灵活、坚固和抗污染的不对称膜。

A flexible, robust and antifouling asymmetric membrane based on ultra-long ceramic/polymeric fibers for high-efficiency separation of oil/water emulsions.

机构信息

Qatar Environment and Energy Research Institute, Hamad Bin Khalifa University, Qatar Foundation, PO Box 5825, Doha, Qatar.

出版信息

Nanoscale. 2017 Jul 6;9(26):9018-9025. doi: 10.1039/c7nr02364b.

Abstract

Polymeric and ceramic asymmetric membranes have dominated commercial membranes for water treatment. However, polymeric membranes are prone to becoming fouled, while ceramic membranes are mechanically fragile. Here, we report a novel concept to develop asymmetric membranes based on ultra-long ceramic/polymeric fibers, with the combined merits of good mechanical stability, excellent fouling resistance and high oil/water selectivity, in order to meet the stringent requirements for practical oil/water separation. The ultra-long dimensions of ceramic nanofibers/polymeric microfibers endow this novel membrane with mechanical flexibility and robustness, due to the integrated and intertwined structure. This membrane is capable of separating oil/water emulsions with high oil-separation efficiency (99.9%), thanks to its nanoporous selective layer made of ceramic nanofibers. Further, this membrane also displays superior antifouling properties due to its underwater superoleophobicity and ultra-low oil adhesion of the ceramic-based selective layer. This membrane exhibits high water permeation flux (6.8 × 10 L m h bar) at low operation pressures, which is attributed to its 3-dimensional (3D) interconnected fiber-based structure throughout the membrane. In addition, the facile fabrication process and inexpensive materials required for this membrane suggest its significant potential for industrial applications.

摘要

聚合物和陶瓷不对称膜已在水处理商业膜中占主导地位。然而,聚合物膜容易被污染,而陶瓷膜则机械脆弱。在这里,我们报告了一种开发基于超长陶瓷/聚合物纤维的不对称膜的新概念,具有良好的机械稳定性、优异的抗污染性和高的油水选择性的综合优点,以满足实际油水分离的严格要求。由于集成和交织结构,超长尺寸的陶瓷纳米纤维/聚合物微纤维使这种新型膜具有机械柔韧性和坚固性。由于其由陶瓷纳米纤维制成的纳米多孔选择性层,该膜能够分离高油分离效率(99.9%)的油水乳液。此外,由于其基于陶瓷的选择性层的水下超疏油性和超低油附着性,该膜还表现出优异的抗污染性能。该膜在低操作压力下表现出高的水渗透通量(6.8×10 L m h bar),这归因于其贯穿整个膜的三维(3D)互联纤维结构。此外,该膜所需的简单制造工艺和廉价材料表明其在工业应用中有很大的潜力。

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