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将两性离子氧化石墨烯纳入海藻酸钠膜中以实现高效的水/醇分离。

Incorporating Zwitterionic Graphene Oxides into Sodium Alginate Membrane for Efficient Water/Alcohol Separation.

机构信息

Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University , Tianjin 300072, China.

Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) , Tianjin 300072, China.

出版信息

ACS Appl Mater Interfaces. 2016 Jan 27;8(3):2097-103. doi: 10.1021/acsami.5b10551. Epub 2016 Jan 14.

Abstract

For the selective water-permeation across dense membrane, constructing continuous pathways with high-density ionic groups are of critical significance for the preferential sorption and diffusion of water molecules. In this study, zwitterionic graphene oxides (PSBMA@GO) nanosheets were prepared and incorporated into sodium alginate (SA) membrane for efficient water permeation and water/alcohol separation. The two-dimensional GO provides continuous pathway, while the high-density zwitterionic groups on GO confer electrostatic interaction sites with water molecules, leading to high water affinity and ethanol repellency. The simultaneous optimization of the physical and chemical structures of water transport pathway on zwitterionic GO surface endows the membrane with high-efficiency water permeation. Using dehydration of water/alcohol mixture as the model system, the nanohybrid membranes incorporating PSBMA@GO exhibit much higher separation performance than the SA membrane and the nanohybrid membrane utilizing unmodified GO as filler (with the optimal permeation flux of 2140 g m(-2) h(-1), and separation factor of 1370). The study indicates the great application potential of zwitterionic graphene materials in dense water-permeation membranes and provides a facile approach to constructing efficient water transport pathway in membrane.

摘要

对于致密膜的选择性水渗透,构建具有高密度离子基团的连续通道对于水分子的优先吸附和扩散具有重要意义。在这项研究中,两性离子氧化石墨烯(PSBMA@GO)纳米片被制备并掺入海藻酸钠(SA)膜中,以实现高效的水渗透和水/醇分离。二维 GO 提供了连续的通道,而 GO 上的高密度两性离子基团赋予了与水分子的静电相互作用位点,导致高亲水性和乙醇排斥性。两性离子 GO 表面上的水输运通道的物理和化学结构的同时优化赋予了膜高效的水渗透性能。以水/醇混合物的脱水为模型体系,与 SA 膜和用作填料的未改性 GO 纳米复合膜(具有最优渗透通量 2140 g m(-2) h(-1)和分离因子 1370)相比,掺入 PSBMA@GO 的纳米复合膜表现出更高的分离性能。该研究表明两性离子石墨烯材料在致密水渗透膜中的应用潜力巨大,并为构建膜中的高效水输运通道提供了一种简便的方法。

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