Title :
Anion conductive imidazolium-based Parmax alkaline membrane for fuel cell applications
Author :
Hossain, Md Aynal ; Hohyoun Jang ; Youngdon Lim ; Soonho Lee ; Hyunho Joo ; Taehoon Hong ; Fei Tan ; Whan Gi Kim
Author_Institution :
Dept. of Appl. Chem., Konkuk Univ., Chungju, South Korea
Abstract :
The anion exchange polyphenylene membrane containing imidazolium hydroxide ionic functional group was synthesized by sequential chloromethylation, substitution with 1-methylimidazole and ion exchange. The imidazolium hydroxide Parmax 1200 membrane has all carbon-carbon bonds without ether linkages, which would be chemically strong. The polyphenylene structure of Parmax provides a stiff and resistant backbone, whereas the pendant benzoyl group provides sites for chemical modifications. The resulting ionomer membrane showed ion exchange capacity (IEC) of 2.14 mmol g-1 with maximum chloromethylation yield. The imidazolium-functionalized copolymer membrane showed lower water affinity and high durability in alkaline condition. It exhibited hydroxide ion conductivity above 10-2 S cm-1 at room temperature and good chemical stability for up to seven days without significant losses of ion conductivity. The structural properties of the synthesized polymer membrane were investigated by 1H NMR spectroscopy and FT-IR. The membranes were studied by IEC, water uptake, and conductivity assessment.
Keywords :
alkaline fuel cells; ion exchange; membranes; negative ions; polymer blends; 1-methylimidazole; FT-IR; H NMR spectroscopy; IEC; alkaline condition; anion conductive imidazolium-based parmax 1200 alkaline membrane; anion exchange polyphenylene membrane; carbon-carbon bond; chemical modification; chemical stability; durability; ether linkage; fuel cell application; hydroxide ion conductivity; imidazolium hydroxide ionic functional group; imidazolium-functionalized copolymer membrane; ion conductivity loss; ion exchange capacity; ionomer membrane; pendant benzoyl group; sequential chloromethylation; temperature 293 K to 298 K; water affinity; water uptake; Chemicals; Conductivity; Fuel cells; Polymers; Protons; Temperature measurement; Thermal stability; Carbon-carbon bond; Chemical stability; Conductivity; Parmax 1200; Polyphenylene;
Conference_Titel :
Renewable Energy Congress (IREC), 2014 5th International
Conference_Location :
Hammamet
Print_ISBN :
978-1-4799-2196-6
DOI :
10.1109/IREC.2014.6827011