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Graphene Oxide-Functionalized Membranes: The Importance of Nanosheet Surface Exposure for Biofouling Resistance

机译:氧化石墨烯官能化膜:纳米片表面暴露对于生物污染的重要性。

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摘要

Surface functionalization using two-dimensional (2D) graphene oxide (GO) materials is a promising technique to enhance the biofouling resistance of membranes used in water purification and reuse. However, the role of GO exposure, which is crucial for the contact-mediated toxicity mechanism, has not been well evaluated or elucidated in previous studies. Herein, we employ bioinspired polydopamine chemistry to fabricate GO-function-alized membranes through two strategies: coating and blending. The two types of GO-functionalized membranes displayed comparable roughness, hydrophilicity, water permeability, and solute retention properties but different degrees of GO nanosheet exposure on the membrane surface. When in contact with the model bacterium, Escherichia coli, the GO-coated membrane exhibited enhanced biofouling resistance compared to that of the GO-blended membrane, as evidenced by lower viable cells in static adsorption experiments, and lower water flux decline and higher flux recovery in dynamic biofouling experiments. Moreover, the development of biofilm on the GO-coated membrane was also inhibited to a greater extent than on the GO-blended membrane. Taken together, our findings indicate the paramount importance of GO exposure on the membrane surface in conferring antibacterial activity and biofouling resistance, which should be considered in the future design of antibiofouling membranes using 2D nanomaterials.
机译:使用二维(2D)氧化石墨烯(GO)材料进行表面功能化是一种有前途的技术,可增强用于水净化和再利用的膜的抗生物结垢性。但是,GO暴露的作用,对于接触介导的毒性机制至关重要,在先前的研究中尚未得到很好的评估或阐明。在这里,我们采用生物启发的聚多巴胺化学,通过两种策略来制造GO功能化膜:涂层和共混。两种类型的GO功能化膜显示出可比的粗糙度,亲水性,水渗透性和溶质保留特性,但GO纳米片在膜表面的暴露程度不同。当与模型细菌大肠杆菌接触时,与GO混合膜相比,GO涂层膜表现出更高的生物污染阻力,这在静态吸附实验中具有较低的存活细胞,并且水通量下降和通量回收率更高在动态生物污垢实验中。而且,与GO混合膜相比,GO涂层膜上生物膜的发展也受到更大程度的抑制。两者合计,我们的研究结果表明GO暴露在膜表面对赋予抗菌活性和抗生物污垢性至关重要,这在将来使用2D纳米材料设计的抗污膜中应予以考虑。

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  • 来源
    《Environmental Science & Technology》 |2020年第1期|517-526|共10页
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    State Key Laboratory of Environmental Aquatic Chemistry Research Center for Eco-Environmental Sciences Chinese Academy of Sciences Beijing 100085 China State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China Department of Chemical and Environmental Engineering Yale University New Haven Connecticut 06520-8286 United States;

    Department of Chemical and Environmental Engineering Yale University New Haven Connecticut 06520-8286 United States;

    Department of Chemical and Environmental Engineering Yale University New Haven Connecticut 06520-8286 United States Division of Environmental Engineering Hokkaido University N13W8 Kita-ku Sapporo 060-8628 Japan;

    Department of Desalination and Water Treatment Zuckerberg Institute for Water Research The Blaustein Institutes for Desert Research Ben-Gurion University of the Negev Sede-Boqer Campus Midreshet 84990 Israel;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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