Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane

© 2017 Hydrogen Energy Publications LLC Approaches for constructing efficient and stable proton transfer highways in polymer materials are urgently desirable and required for elevated-temperature polymer electrolyte membrane fuel cell (PEMFC). Herein, ionic liquid intercalated GO (IGO) with acceptab...

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Main Authors: Wu, W., Wang, J., Liu, Jian, Chen, P., Zhang, H., Huang, J.
Format: Journal Article
Published: Elsevier Ltd 2017
Online Access:http://hdl.handle.net/20.500.11937/72551
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author Wu, W.
Wang, J.
Liu, Jian
Chen, P.
Zhang, H.
Huang, J.
author_facet Wu, W.
Wang, J.
Liu, Jian
Chen, P.
Zhang, H.
Huang, J.
author_sort Wu, W.
building Curtin Institutional Repository
collection Online Access
description © 2017 Hydrogen Energy Publications LLC Approaches for constructing efficient and stable proton transfer highways in polymer materials are urgently desirable and required for elevated-temperature polymer electrolyte membrane fuel cell (PEMFC). Herein, ionic liquid intercalated GO (IGO) with acceptable fluidity is synthesized by a facile one-pot method and then utilized to construct anhydrous transfer highways in polymer-based composite membrane. The basic-imidazole-cation-containing ionic liquid (IL) increases the flexibility of IGO and meanwhile reinforces the interaction with acidic sulfonated poly(ether ether ketone) (SPEEK) matrix, thus yielding more proportion of perpendicularly oriented IGO and the subsequent formation of 3-D cross-linked IGO networks. The IL molecules act as effective proton carrier sites along IGO networks, and in this way, efficient and long-range transfer highways for “bulk in-plane” proton conduction are constructed. SP-(25I-GO)-10% achieves the maximum conductivity of 7.29 mS cm-1at 150 °C, 10 times higher than that of SPEEK control membrane. Meanwhile, the maximum current density and power density of SP-(25I-GO)-10% at 90 °C are 574.1 mA cm-2and 145.1 mW cm-2, increased by 48% and 102% compared with that of SPEEK control membrane, respectively. Additionally, the nanoconfined effect of interlayer renders composite membrane enhanced IL retention ability through capillary force, consequently stable proton conduction and single cell behavior.
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spelling curtin-20.500.11937-725512018-12-13T09:31:56Z Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane Wu, W. Wang, J. Liu, Jian Chen, P. Zhang, H. Huang, J. © 2017 Hydrogen Energy Publications LLC Approaches for constructing efficient and stable proton transfer highways in polymer materials are urgently desirable and required for elevated-temperature polymer electrolyte membrane fuel cell (PEMFC). Herein, ionic liquid intercalated GO (IGO) with acceptable fluidity is synthesized by a facile one-pot method and then utilized to construct anhydrous transfer highways in polymer-based composite membrane. The basic-imidazole-cation-containing ionic liquid (IL) increases the flexibility of IGO and meanwhile reinforces the interaction with acidic sulfonated poly(ether ether ketone) (SPEEK) matrix, thus yielding more proportion of perpendicularly oriented IGO and the subsequent formation of 3-D cross-linked IGO networks. The IL molecules act as effective proton carrier sites along IGO networks, and in this way, efficient and long-range transfer highways for “bulk in-plane” proton conduction are constructed. SP-(25I-GO)-10% achieves the maximum conductivity of 7.29 mS cm-1at 150 °C, 10 times higher than that of SPEEK control membrane. Meanwhile, the maximum current density and power density of SP-(25I-GO)-10% at 90 °C are 574.1 mA cm-2and 145.1 mW cm-2, increased by 48% and 102% compared with that of SPEEK control membrane, respectively. Additionally, the nanoconfined effect of interlayer renders composite membrane enhanced IL retention ability through capillary force, consequently stable proton conduction and single cell behavior. 2017 Journal Article http://hdl.handle.net/20.500.11937/72551 10.1016/j.ijhydene.2017.01.129 Elsevier Ltd restricted
spellingShingle Wu, W.
Wang, J.
Liu, Jian
Chen, P.
Zhang, H.
Huang, J.
Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title_full Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title_fullStr Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title_full_unstemmed Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title_short Intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
title_sort intercalating ionic liquid in graphene oxide to create efficient and stable anhydrous proton transfer highways for polymer electrolyte membrane
url http://hdl.handle.net/20.500.11937/72551