4.7 Article

Tuning 6FDA-DABA membrane performance for CO2 removal by physical densification and decarboxylation cross-linking during simple thermal treatment

期刊

JOURNAL OF MEMBRANE SCIENCE
卷 610, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.memsci.2020.118195

关键词

6FDA-DABA; Thermal annealing; Physical tightening; Decarboxylation cross-linking; CO2 removal

资金

  1. FWO-SB fellowship [1S63317N]

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Thermally induced decarboxylation cross-linking of carboxylic acid bearing polyimides has been recently introduced to create cross-linked polymer membranes with enhanced gas permeability. The main focus has been on the cross-linking of high permeability/low selectivity 6FDA copolymers with a relatively low amount of carboxylic acid groups. In contrast, decarboxylation cross-linking was applied in this work on a low perme-ability/high selectivity polymer with a large amount of -COOH groups (pure 6FDA-DABA). 6FDA-DABA mem-branes were thermally treated at different temperatures (100 degrees C, 180 degrees C, 250 degrees C, 350 degrees C and 400 degrees C and tested for CO2/CH4 and CO2/N-2 separation and thoroughly characterized by ATR-FTIR, TGA-MS, DSC, EDX, XRD, density measurements, fluorescence spectroscopy and gas sorption measurements. Two counteracting mecha-nisms defined the overall performance of the cured membranes. Physical tightening of the membrane signifi-cantly enhanced the CO2/CH4 separation factor with increasing annealing temperature due to an improved polymer chain packing efficiency, which was confirmed by fluorescence spectroscopy and membrane density experiments. In contrast, cross-linking through decarboxylation occurred from 330 degrees C onward and induced a more open polymer structure for 6FDA-DABA-350 and 6FDA-DABA-400. Consequently, the more open polymer structure resulted in an increase in permeability of all gases. For 6FDA-DABA-350, a synergy was observed between the dilation effect of cross-linking and the tightening effect, causing a simultaneous, strong improve-ment of both separation factor (+100%) and permeability (+40%). As a result, the membrane performance crossed the 2018 mixed-gas upper bound and scored very close to the 2008 Robeson upper bound. Moreover, the cross-linked 6FDA-DABA-350 showed an increased resistance to CO2-induced plasticization thanks to covalent cross-linking.

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