4.7 Article

Thin-film nanocomposite nanofiltration membrane with enhanced desalination and antifouling performance via incorporating L-aspartic acid functionalized graphene quantum dots

期刊

DESALINATION
卷 498, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.desal.2020.114811

关键词

Nanofiltration; Graphene quantum dots; L-aspartic acid; Thin-film nanocomposite; Desalination

资金

  1. Scientific Research Foundation of Third Institute of Oceanography, MNR [2019012]
  2. Fundamental Research Funds for Technology Planning Project of Xiamen City, China [3502Z20183016]
  3. National Natural Science Foundation of China [21736009]
  4. Science & Technology Planning Project of Fujian Province [2019H0049]
  5. Xiamen Ocean Research and Development Institute [K200103]

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This study successfully synthesized L-aspartic acid functionalized graphene quantum dots (AGQDs) and incorporated them into thin-film nanocomposite nanofiltration membranes, showing enhanced desalination and antifouling performance. The presence of AGQDs significantly improved water permeance and Na2SO4 rejection of the membranes, highlighting the potential of amino acid-functionalized GQDs for high-performance NF membranes in water desalination applications.
To fabricate thin-film nanocomposite (TFN) nanofiltration (NF) membrane with enhanced desalination and antifouling performance, L-aspartic acid functionalized graphene quantum dots (AGQDs), integrating the advantages of L-aspartic acid and graphene quantum dots (GQDs), were successfully synthesized and incorporated into the polyamide (PA) selective layer via interfacial polymerization (IP) method. The fabricated TFN membranes with various AGQDs contents were systematically characterized by the microstructures, surface properties, desalination, and antifouling performance. The optimal AGQDs concentration in the aqueous solution reaches 3000 ppm, the resultant TFN-3 membrane exhibits an outstanding water permeance of 18.5 LMH/bar, 60.9% higher than the TFC-blank membrane. Meanwhile, the TFN-3 membrane possesses a higher Na2SO4 rejection than that of the TFC-blank membrane (98.4% vs 95.7%). Additionally, the TFN-3 membrane shows superior antifouling performance over the TFC-blank membrane in the presence of either the negatively charged foulant (BSA) or the positively charged foulant (lysozyme). An appropriate amount of AGQDs added into aqueous solution favors the formation of a smooth, thin, hydrophilic, and electrically neutral selective layer. As a result, the overall separation performance of the TFN-3 membrane, especially the desalination and antifouling performance, are significantly enhanced with the help of AGQDs. Therefore, the incorporation of amino acidfunctionalized GQDs into the PA selective layer presents a novel strategy to produce a high-performance NF membrane for water desalination.

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