Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes

© 2016 Elsevier B.V. Computational simulations have suggested the enormous potential of using porous graphene-based materials for gas separation. However, this has yet to be demonstrated in a continuous and macroscopic membrane due to the difficulty in membrane fabrication. In this work, we reported...

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Main Authors: Dong, G., Hou, J., Wang, J., Zhang, Y., Chen, V., Liu, Jian
Format: Journal Article
Published: Elsevier BV 2016
Online Access:http://hdl.handle.net/20.500.11937/72076
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author Dong, G.
Hou, J.
Wang, J.
Zhang, Y.
Chen, V.
Liu, Jian
author_facet Dong, G.
Hou, J.
Wang, J.
Zhang, Y.
Chen, V.
Liu, Jian
author_sort Dong, G.
building Curtin Institutional Repository
collection Online Access
description © 2016 Elsevier B.V. Computational simulations have suggested the enormous potential of using porous graphene-based materials for gas separation. However, this has yet to be demonstrated in a continuous and macroscopic membrane due to the difficulty in membrane fabrication. In this work, we reported a facile process to fabricate the partially porous reduced graphene oxide (PRG) nanosheets from graphene oxide (GO) via a wet chemical process. Then the fabricated PRG was blended into Pebax®1657 polymer to prepare a mixed matrix gas separation membrane. In order to ensure good dispersion of the PRG nanosheets within the polymeric matrix, the reduction degree of GO should be carefully controlled. In addition, the residual functional groups on the partially reduced nanosheets surface facilitated the formation of highly efficient molecular sieving laminate structures within the mixed matrix membrane: the narrow gas flow galleries (average width of 0.34 nm) between the neighbouring nanosheets ensured effective molecular sieving of CO2against other larger gas molecules, while the mesoscopic pores on the laminate provided rapid gas transport pathways. Finally, the mixed matrix gas separation membrane had substantially improved CO2permeability as well as CO2/N2selectivity. This work is the first to report the fabrication of the porous GO-based gas separation membrane, and offers many opportunities to exploit the unique properties of porous GO in the fabrication of various molecular sieving membranes.
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spelling curtin-20.500.11937-720762023-08-02T06:39:12Z Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes Dong, G. Hou, J. Wang, J. Zhang, Y. Chen, V. Liu, Jian © 2016 Elsevier B.V. Computational simulations have suggested the enormous potential of using porous graphene-based materials for gas separation. However, this has yet to be demonstrated in a continuous and macroscopic membrane due to the difficulty in membrane fabrication. In this work, we reported a facile process to fabricate the partially porous reduced graphene oxide (PRG) nanosheets from graphene oxide (GO) via a wet chemical process. Then the fabricated PRG was blended into Pebax®1657 polymer to prepare a mixed matrix gas separation membrane. In order to ensure good dispersion of the PRG nanosheets within the polymeric matrix, the reduction degree of GO should be carefully controlled. In addition, the residual functional groups on the partially reduced nanosheets surface facilitated the formation of highly efficient molecular sieving laminate structures within the mixed matrix membrane: the narrow gas flow galleries (average width of 0.34 nm) between the neighbouring nanosheets ensured effective molecular sieving of CO2against other larger gas molecules, while the mesoscopic pores on the laminate provided rapid gas transport pathways. Finally, the mixed matrix gas separation membrane had substantially improved CO2permeability as well as CO2/N2selectivity. This work is the first to report the fabrication of the porous GO-based gas separation membrane, and offers many opportunities to exploit the unique properties of porous GO in the fabrication of various molecular sieving membranes. 2016 Journal Article http://hdl.handle.net/20.500.11937/72076 10.1016/j.memsci.2016.08.059 Elsevier BV restricted
spellingShingle Dong, G.
Hou, J.
Wang, J.
Zhang, Y.
Chen, V.
Liu, Jian
Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title_full Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title_fullStr Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title_full_unstemmed Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title_short Enhanced CO2/N2separation by porous reduced graphene oxide/Pebax mixed matrix membranes
title_sort enhanced co2/n2separation by porous reduced graphene oxide/pebax mixed matrix membranes
url http://hdl.handle.net/20.500.11937/72076