International Journal of Hydrogen Energy, Vol.36, No.19, 12406-12416, 2011
Quinoxaline-based crosslinked membranes of sulfonated poly(arylene ether sulfone)s for fuel cell applications
A series of crosslinkable sulfonated poly(arylene ether sulfone)s (SPAESs) were synthesized by copolymerization of 4,4'-biphenol with 2,6-difluorobenzil and 3,3'-disulfonated-4,4'-difluorodiphenyl sulfone disodium salt. Quinoxaline-based crosslinked SPAESs were prepared via the cyclocondensation reaction of benzil moieties in polymer chain with 3,3'-diaminobenzidine to form quinoxaline groups acting as covalent and acid-base ionic crosslinking. The uncrosslinked and crosslinked SPAES membranes showed high mechanical properties and the isotropic membrane swelling, while the later became insoluble in tested polar aprotic solvents. The crosslinldng significantly improved the membrane performance, i.e., the crosslinked membranes had the lower membrane dimensional change, lower methanol permeability and higher oxidative stability than the corresponding precursor membranes, with keeping the reasonably high proton conductivity. The crosslinked membrane (CS1-2) with measured ion exchange capacity of 1.53 mequiv. g(-1) showed a reasonably high proton conductivity of 107 mS/cm with water uptake of 48 wt.% at 80 degrees C, and exhibited a low methanol permeability of 2.3 x 10(-7) cm(2) s(-1) for 32 wt.% methanol solution at 25 degrees C. The crosslinked SPAES membranes have potential for PEFC and DMFCs. Copyright (C) 2011, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
Keywords:Cross linked sulfonated poly(arylene ether sulfone);Proton exchange membrane;Quinoxaline groups;Methanol permeability