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负载还原氧化石墨烯@二氧化钛@银纳米复合材料的多功能薄膜纳滤膜用于高效海水淡化、染料截留及抗菌性能

Multifunctional Thin-Film Nanofiltration Membrane Incorporated with Reduced Graphene Oxide@TiO@Ag Nanocomposites for High Desalination Performance, Dye Retention, and Antibacterial Properties.

作者信息

Abadikhah Hamidreza, Naderi Kalali Ehsan, Khodi Samaneh, Xu Xin, Agathopoulos Simeon

机构信息

School of Life Sciences , University of Science and Technology of China , 443 Huangshan Road , Hefei , Anhui 230027 , China.

Department of Materials Science and Engineering , University of Ioannina , Ioannina GR-45110 , Greece.

出版信息

ACS Appl Mater Interfaces. 2019 Jul 3;11(26):23535-23545. doi: 10.1021/acsami.9b03557. Epub 2019 Jun 24.

Abstract

High desalination performance, dye retention, and antibacterial properties were achieved with a multifunctional thin-film nanocomposite (MTFN) membrane, fabricated by the incorporation of a novel nanocomposite structure of reduced graphene oxide@TiO@Ag (rGO@TiO@Ag) into the polyamide active layer. The specific characteristics of the graphene-based nanocomposite, synthesized by the microwave-assisted irradiation process, favored water channelization and provided superhydrophilicity and antibacterial properties to the MTFN membranes. In comparison with the conventional methods, such as multistep chemical process using strong agents for reduction and long-term energy-consuming hydrothermal process, microwave irradiation facilitated a green, fast, and cost-effective route for the fabrication of GO-based nanocomposites for multifunctional applications. Interfacial polymerization was performed on a polyethersulfone/SiN robust hollow fiber substrate using m-phenylenediamine aqueous solution and 1,3,5-benzenetricarbonyltrichloride organic solution. The structural and chemical characteristics of the synthesized nanocomposites and the MTFN membranes were thoroughly studied by a series of characterization analyses (transmission electron microscopy, field emission scanning electron microscopy, X-ray diffraction, Fourier transform infrared, energy-dispersive X-ray spectroscopy, X-ray photoelectron spectroscopy, and atomic force microscopy). The physicochemical properties and the nanofiltration performance of the MTFN membranes were investigated after the incorporation of rGO@TiO@Ag at various concentrations. The water contact angles confirmed the superb surface hydrophilicity of the MTFN membranes. High permeability (52 L·m·h), desalination (96% for 1 g/L NaSO feed solution), and dye retention (98% for 0.5 g/L rose bengal feed solution) were recorded for MTFN enriched with 0.2 wt % rGO@TiO@Ag. A 90% reduction in the number of viable bacteria ( Escherichia coli), after 3 h of contact with MTFN membranes, confirmed the superior antibacterial activity of the produced membranes.

摘要

通过将还原氧化石墨烯@二氧化钛@银(rGO@TiO@Ag)的新型纳米复合结构掺入聚酰胺活性层中制备的多功能薄膜纳米复合(MTFN)膜,实现了高脱盐性能、染料截留率和抗菌性能。通过微波辅助辐照工艺合成的基于石墨烯的纳米复合材料的特定特性有利于水通道化,并为MTFN膜提供了超亲水性和抗菌性能。与传统方法(如使用强还原剂的多步化学工艺和长期耗能的水热工艺)相比,微波辐照为制备用于多功能应用的基于氧化石墨烯的纳米复合材料提供了一条绿色、快速且经济高效的途径。使用间苯二胺水溶液和1,3,5-苯三甲酰氯有机溶液在聚醚砜/氮化硅坚固中空纤维基材上进行界面聚合。通过一系列表征分析(透射电子显微镜、场发射扫描电子显微镜、X射线衍射、傅里叶变换红外光谱、能量色散X射线光谱、X射线光电子能谱和原子力显微镜)对合成的纳米复合材料和MTFN膜的结构和化学特性进行了深入研究。在掺入不同浓度的rGO@TiO@Ag后,研究了MTFN膜的物理化学性质和纳滤性能。水接触角证实了MTFN膜具有出色的表面亲水性。富含0.2 wt% rGO@TiO@Ag的MTFN的渗透率高达52 L·m·h,对1 g/L硫酸钠进料溶液的脱盐率为96%,对0.5 g/L孟加拉玫瑰红进料溶液的染料截留率为98%。与MTFN膜接触3小时后,活菌(大肠杆菌)数量减少90%,证实了所制备膜具有优异的抗菌活性。

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