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Cited 37 time in webofscience Cited 45 time in scopus
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Asymmetric mixed-matrix membranes incorporated with nitrogen-doped graphene nanosheets for highly selective gas separation

Authors
Yang, EuntaeGoh, KunliChuah, Chong YangWang, RongBae, Tae-Hyun
Issue Date
1-Dec-2020
Publisher
Elsevier BV
Keywords
Nitrogen-doped graphene (N-G); Mixed-matrix membrane; Gas separation; Polyimide; Asymmetric membrane
Citation
Journal of Membrane Science, v.615
Indexed
SCIE
SCOPUS
Journal Title
Journal of Membrane Science
Volume
615
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/5806
DOI
10.1016/j.memsci.2020.118293
ISSN
0376-7388
1873-3123
Abstract
Conventional mixed-matrix membranes (MMMs) possess a dense structure with a filler material uniformly dispersed within the polymer matrix to engineer the transport properties and achieve enhanced gas separation performances with respect to pure polymeric membranes. However, a dense membrane structure increases the transport resistance and undesirably requires a high filler loading to see a substantial enhancement in separation performances. To address this problem, we fabricated asymmetric MMMs that have a thin-selective layer of around 0.5 mu m and a low loading (0.03-0.10 wt%) of nitrogen-doped graphene (N-G) nanosheets. The presence of the nitrogen- and oxygen-containing functional groups on the N-G nanosheets ensured good compatibility between filler and polymer matrix, which resulted in strong polymer/filler interfacial adhesions. The N-G nanosheets were also found to be capable of migrating to the top of the membranes during phase inversion. Hence, despite the low filler loadings used in this work, the capacity of the dense selective layers was greatly enhanced. Based on our experimental results, 0.07 wt% and 0.10 wt% loading of N-G nanosheets can improve both O-2/N-2 (126.9%) and CO2/N-2 (45.8%) selectivities with respect to pure polymeric membranes, resulting in O-2/N-2 separation performance surpassing the Robeson upper bound.
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해양과학대학 (해양환경공학과)
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