Random and multiblock sulfonated poly(arylene ether sulfone)s (SPEs) containing various azole groups such as oxadiazole and triazole were synthesized and characterized for fuel cell application. Successful preparation of SPE membranes depended on the structure of azole groups, which affected solubility of precursors and the resulting SPEs. Although oxadiazole groups were incorporated into hydrophobic component, they were found to be hydrophilic to give higher proton conductivity. Introduction of oxadiazole groups into random SPE gave comparable proton conductivity to that of Nafion NRE at >60% relative humidity at 80 degrees C. Block copolymer structure further increased the proton diffusion coefficient without increasing ion exchange capacity. Hydrolytic and oxidative stability of the SPE membranes was affected by both hydrophilic and hydrophobic components. Oxadiazole groups gave negative impact on hydrolytic and mechanical stability to the SPE membranes. (C) 2011 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 49: 3863 3873, 2011
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Univ Yamanashi, Interdisciplinary Grad Sch Med & Engn, Kofu, Yamanashi 4008510, JapanUniv Yamanashi, Interdisciplinary Grad Sch Med & Engn, Kofu, Yamanashi 4008510, Japan
Hoshi, Takayuki
Miyake, Junpei
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Univ Yamanashi, Fuel Cell Nanomat Ctr, Kofu, Yamanashi 4000021, JapanUniv Yamanashi, Interdisciplinary Grad Sch Med & Engn, Kofu, Yamanashi 4008510, Japan
Miyake, Junpei
Watanabe, Masahiro
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Univ Yamanashi, Fuel Cell Nanomat Ctr, Kofu, Yamanashi 4000021, JapanUniv Yamanashi, Interdisciplinary Grad Sch Med & Engn, Kofu, Yamanashi 4008510, Japan
Watanabe, Masahiro
Miyatake, Kenji
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Univ Yamanashi, Fuel Cell Nanomat Ctr, Kofu, Yamanashi 4000021, Japan
Univ Yamanashi, Clean Energy Res Ctr, Kofu, Yamanashi 4008510, JapanUniv Yamanashi, Interdisciplinary Grad Sch Med & Engn, Kofu, Yamanashi 4008510, Japan