Postsynthetic Polymerization of UiO-66-NH 2 for the Fabrication of Nylon/MOF Hybrid Membranes with Enhanced PFOS and PFOA Uptake
Manuela Leticia Kim, Eugenio H. Otal, Azeem Ullah, Seulgee Lee, Hideki Tanaka, Mutsumi Kimura, Katsuya Teshima
Shinshu University Ōtani University Innovation Cluster (Canada) Center for Innovation
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This study presents an approach for fabricating Nylon/MOF hybrid membranes via the postsynthetic modification of UiO-66-NH 2 to introduce polymerizable moieties, followed by in situ polymerization with Nylon. Comprehensive characterization (FTIR, XPS, TGA, powder X-ray diffraction, SEM/EDS, TEM, and LC-MS) confirms the retention of MOF crystallinity, homogeneous dispersion within the Nylon (PA) matrix, and effective capture of per- and polyfluoroalkyl substances (PFAS). The resulting composites exhibit markedly enhanced adsorption capacities from water: for perfluorooctanesulfonic acid (PFOS), PA membranes show Q max = 94 mg g –1 while PA–MOF achieves 102 mg g –1; for perfluorooctanoic acid (PFOA), PA membranes show Q max = 18 mg g –1 while PA–MOF reaches 31 mg g –1, corresponding to increases of 9 and 72%, respectively. Although the hybrid membranes display lower Q max values than the pure MOF (160 to >2000 mg g –1 ), they exhibit significantly higher affinity constants. From the best-fit models, the affinity constants were: PFOS─PA (Double-Langmuir) K L,1 = 0.22, K L,2 = 11.02; PA–MOF (Double-Langmuir) K L,1 = 0.36, K L,2 = 25.96; and PFOA─PA (Sips) K S = 0.90 ( n = 0.68), PA–MOF (Sips) K S = 0.36 ( n = 1.32). These results indicate stronger interactions and superior uptake efficiency at low PFAS concentrations─an essential feature for real water treatment applications─and, in the case of PA–MOF, a cooperative intrapore mechanism for PFOA adsorption ( n > 1). Adsorption modeling reveals dual-site interactions best described by the Double-Langmuir and Sips isotherms, consistent with heterogeneous binding arising from polar amide functionalities in Nylon and the intrinsically high surface area of the MOF. Overall, this work demonstrates a robust and scalable route to hybrid membranes for advanced water purification and environmental remediation.
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物理Membrane Separation Technologies
Per- and polyfluoroalkyl substances research · Membrane Separation and Gas Transport
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