石墨烯
纳米孔
膜
纳米孔
材料科学
氧化物
渗透
化学工程
气体分离
分子
氧化石墨烯纸
纳米技术
有机化学
化学
生物化学
工程类
冶金
作者
Wooyoung Choi,Seung Eun Choi,Jae Seung Seol,Jeong Pil Kim,Minsu Kim,Hyungjoon Ji,Ohchan Kwon,Hanim Kim,Ki Chul Kim,Dae Woo Kim
标识
DOI:10.1016/j.memsci.2022.120821
摘要
H2/CO2 separation is essential for various industrial applications, such as hydrocarbon steam reforming for H2 production. Herein, a layered composite membrane composed of nanoporous graphene (NG) and polyethylene oxide (PEO) is developed. The membrane demonstrates an ultrafast H2 permeability of ca. 32 240 barrer with a moderate H2/CO2 selectivity of 25, which far surpasses the upper bound of the separation performance demonstrated by existing membrane materials. The regularly layered structure is fabricated by facilitating the intercalation of PEO via an aqueous graphene-oxide liquid crystal (GOLC) scaffold. After preparing the layered GO/PEO membrane, hot pressing is conducted to activate dense nanopores on the basal plane of graphene, resulting in an NG/PEO membrane. The permeation of gas molecules is significantly enhanced owing to the presence of nanopores and expansion of the interlayer spacing by PEO. In contrast, CO2 permeation is lower than that of H2 owing to its strong binding interaction with PEO, and molecular simulations demonstrate that this CO2–PEO interaction is significantly enhanced owing to the confinement of PEO in the graphene interlayer spacing, particularly at d-spacing of approximately 7–8 Å.
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