Bipyridine-based UiO-67 as novel filler in mixed-matrix membranes for CO2-selective gas separation

© 2019 Elsevier B.V. Bipyridine-based UiO-67 Metal-Organic Frameworks (MOFs) are for the first time successfully applied as filler material in Matrimid mixed-matrix membranes (MMMs). Extensive characterization of fillers (via XRD, NMR, SEM, ATR-FTIR, CO 2 and N 2 physisorption) and membranes (via XR...

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Veröffentlicht in:JOURNAL OF MEMBRANE SCIENCE 2019-04, Vol.576, p.78-87
Hauptverfasser: Thur, Raymond, Van Velthoven, Niels, Slootmaekers, Sam, Didden, Jeroen, Verbeke, Rhea, Smolders, Simon, Dickmann, Marcel, Egger, Werner, De Vos, Dirk, Vankelecom, Ivo F.J
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Sprache:eng
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Zusammenfassung:© 2019 Elsevier B.V. Bipyridine-based UiO-67 Metal-Organic Frameworks (MOFs) are for the first time successfully applied as filler material in Matrimid mixed-matrix membranes (MMMs). Extensive characterization of fillers (via XRD, NMR, SEM, ATR-FTIR, CO 2 and N 2 physisorption) and membranes (via XRD, SEM, ATR-FTIR, DSC, TGA and PALS) were performed to gain insight in the MMM separation behavior. Lewis basic sites in the MMMs function as CO 2 -carriers, doubling CO 2 /CH 4 selectivity (from 38 for pristine Matrimid to 75 for the MMM with 10 wt% UiO-67-33), while the CO 2 permeability was simultaneously improved from 16 Barrer (Matrimid) up till 26 Barrer for the MMM with 10 wt% UiO-67-33 (+63%). Gas permeation experiments suggested a facilitated transport mechanism to be responsible for these high mixed-gas selectivities. The concentration of the filler inside the membrane could be increased to 30 wt%, resulting in a permeability increase of 350% without losing selectivity compared to the Matrimid membrane. Use of N-heterocyclic ligands proved to be an interesting strategy and good alternative for functionalization of MOF surfaces to obtain improved membrane performance.
ISSN:0376-7388