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dc.contributor.author박호범-
dc.date.accessioned2022-12-15T00:26:44Z-
dc.date.available2022-12-15T00:26:44Z-
dc.date.issued2021-11-
dc.identifier.citationSMALL, v. 17, NO. 47, article no. 2104698, Page. 1-10en_US
dc.identifier.issn1613-6810;1613-6829en_US
dc.identifier.urihttps://onlinelibrary.wiley.com/doi/10.1002/smll.202104698en_US
dc.identifier.urihttps://repository.hanyang.ac.kr/handle/20.500.11754/178331-
dc.description.abstractFine control of ultramicroporosity (<7 angstrom) in carbon molecular sieve (CMS) membranes is highly desirable for challenging gas separation processes. Here, a versatile approach is proposed to fabricate hybrid CMS (HCMS) membranes with unique textural properties as well as tunable ultramicroporosity. The HCMS membranes are formed by pyrolysis of a polymer nanocomposite precursor containing metal-organic frameworks (MOFs) as a carbonizable nanoporous filler. The MOF-derived carbonaceous phase displays good compatibility with the polymer-derived carbon matrix due to the homogeneity of the two carbon phases, substantially enhancing the mechanical robustness of the resultant HCMS membranes. Detailed structural analyses reveal that the in situ pyrolysis of embedded MOFs induces more densified and interconnected carbon structures in HCMS membranes compared to those in conventional CMS membranes, leading to bimodal and narrow pore size distributions in the ultramicroporous region. Eventually, the HCMS membranes exhibit far superior gas separation performances with a strong size-sieving ability than the conventional polymers and CMS membranes, especially for closely sized gas pairs (Delta d < 0.5 angstrom) including CO2/CH4 and C3H6/C3H8 separations. More importantly, the developed HCMS material is successfully prepared into a thin-film composite (TFC) membrane (approximate to 1 mu m), demonstrating its practical feasibility for use in industrial mixed-gas operation conditions.en_US
dc.description.sponsorshipT.H.L. and F.M. equally contributed to this work. This publication is based upon work supported by the King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) under Award No. OSR-2019-CPF-4101.3. H.B.P. acknowledges the financial support from Korea Gas Corporation (Kogas) under Award No. 2020-10 (grant #202000000003373) and Korea Evaluation Institute of Industrial Technology under the Ministry of Trade, Industry and Energy, under Award No. 20011497 (grant #202100000000769).en_US
dc.languageenen_US
dc.publisherWILEY-V C H VERLAG GMBHen_US
dc.subjectcarbon molecular sieveen_US
dc.subjectgas separationen_US
dc.subjectmembranesen_US
dc.subjectnanocompositeen_US
dc.subjectultramicroporosityen_US
dc.titleIn Situ Derived Hybrid Carbon Molecular Sieve Membranes with Tailored Ultramicroporosity for Efficient Gas Separationen_US
dc.typeArticleen_US
dc.relation.no47-
dc.relation.volume17-
dc.identifier.doi10.1002/smll.202104698en_US
dc.relation.page1-10-
dc.relation.journalSMALL-
dc.contributor.googleauthorLee, Tae Hoon-
dc.contributor.googleauthorMoghadam, Farhad-
dc.contributor.googleauthorJung, Jae Gu-
dc.contributor.googleauthorKim, Yu Jin-
dc.contributor.googleauthorRoh, Ji Soo-
dc.contributor.googleauthorYoo, Seung Yeon-
dc.contributor.googleauthorLee, Byung Kwan-
dc.contributor.googleauthorKim, Jin Hee-
dc.contributor.googleauthorPinnau, Ingo-
dc.contributor.googleauthorPark, Ho Bum-
dc.sector.campusS-
dc.sector.daehak공과대학-
dc.sector.department에너지공학과-
dc.identifier.pidbadtzhb-
Appears in Collections:
COLLEGE OF ENGINEERING[S](공과대학) > ENERGY ENGINEERING(에너지공학과) > Articles
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