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Wet CO2/N-2 permeation through a crosslinked thermally rearranged poly (benzoxazole-co-imide) (XTR-PBOI) hollow fiber membrane module for CO2 capture

Authors
Lee, Jung HyunLee, JongmyeongJo, Hye JinSeong, Jong GeunKim, Ju SungLee, Won HeeMoon, JonghoLee, DahunOh, Woong JinYeo, Jeong-guLee, Young Moo
Issue Date
Oct-2017
Publisher
ELSEVIER SCIENCE BV
Keywords
Post-combustion CO2 capture; Water vapor permeation; Capillary condensation; Crosslinked thermally rearranged poly (benzoxazole-co-imide); Hollow fiber membrane module
Citation
JOURNAL OF MEMBRANE SCIENCE, v.539, pp.412 - 420
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF MEMBRANE SCIENCE
Volume
539
Start Page
412
End Page
420
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/133937
DOI
10.1016/j.memsci.2017.06.032
ISSN
0376-7388
Abstract
Recently developed crosslinked-thermally rearranged (XTR) polymeric membranes, which show enhanced gas separation, are applicable for CO2 separation from post-combustion gases. Moreover, the resulting thermally rearranged polybenzoxazole (TR-PBO) structure that is thermally induced from hydroxyl-polyimides (HPI) provides high thermal and chemical resistance, which is favorable for gas separation applications containing condensable gases such as water vapor. Herein, the influence of water vapor on the CO2 capture efficiency was evaluated using XTR poly(benzoxazole-co-imide) (XTR-PBOI) hollow fiber membrane modules which were compared with crosslinked HPI (XHPI) in mixture gas and single gases for CO2 and N-2. The results revealed that the permeate CO2 flow rate in the hydrophobic XTR-PBOI module showed enhanced separation performance, whereas the flow rate severely decreased in the relatively hydrophilic XHPI module, reflecting more significant capillary condensation effect in the XHPI membranes. Both membrane modules showed excellent plasticization resistance, and the XTR-PBOI hollow fiber membrane module presented reasonable long-term stability over 240 h.
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