T. Okada et al., ION AND WATER TRANSPORT CHARACTERISTICS IN MEMBRANES FOR POLYMER ELECTROLYTE FUEL-CELLS CONTAINING H+ AND CA2+ CATIONS, Journal of the Electrochemical Society, 144(8), 1997, pp. 2744-2750
The effect of contamination by Ca2+ ions in proton conductive membrane
s for polymer electrolyte fuel cells was investigated systematically.
Ion and water transport characteristics of Nafion membranes, which wer
e equilibrated with 0.02 to 0.03 kmol m(-3) of HCl/CaCl2 mixed solutio
ns of various mixing ratios, were studied by electromotive force analy
sis. Membrane composition analysis, showed that Ca2+ has much higher a
ffinity than H+ to the ion exchange sites in Nafion membranes. The wat
er content in the membrane, as expressed by the amount of water per ca
tionic site H2O/SO3-, decreased about 19% from 21 for H-form membrane
to 17 for Ca-form membrane. The water transference coefficient was obt
ained from streaming potential measurements of Nafion 115 membranes of
various H+/Ca2+ cationic compositions. The water transference coeffic
ient increased from 2.5 toward 11 as the Ca2+ content in the membrane
increased, especially when the equivalent fraction of Hi in the cation
ic exchange sites x(HM) became less than 0.5. Ionic transference numbe
rs for H+ in the membrane, determined by a new electromotive force met
hod, showed rapid decrease when the cationic site occupancy by H+ beca
me less than 0.5. Membrane conductivity changed linearly with H compos
ition in the membrane. In strong contrast to the interaction mode betw
een H+ and Ca cations during ionic conduction, which appeared almost i
ndependent, a certain extent of interference was observed among water
molecules as they were carried along by cations in the membrane. It wa
s predicted that if Ca2+ ions enter the fuel-cell membrane, they cause
serious effects to membrane drying and result in deterioration of fue
l-cell performance. The advantage of this methodology in the study of
transport characteristics of fuel-cell membranes is stressed due to ea
se and accuracy of measurements.