Breadcrumb
- Home
- Publications
- Proceedings
- 2011 Annual Meeting
- Catalysis and Reaction Engineering Division
- Electrocatalysis for PEM Fuel Cells II
- (585f) Optimization of Electrodes Based On Polymer Properties of Hydrocarbon Polyelectrolyte for PEFCs
The sulfonated poly(allylene ethel sulfone) (SPES) was synthesized to investigate polymer properties of hydrocarbon polyelectrolyte and to be used to the catalyst layer as the ionomer. Two types of electrodes were fabricated and the introduction weight ratio of Pt supported carbon (Pt/C): ionomer: and polytetrafluoroethylene (PTFE) was set to 60: 25: 15 (SPES-25, Nafion-25) and 80: 5: 15 (SPES-5) at the dry state, respectively. MEAs were fabricated with Nafion NR-212 membrane along with SPES-25 or SPES-5 electrode, respectively (MEA-SPES-25, MEA-SPES-5). The oxygen permeability coefficient [PO2] was measured and calculated from the amount of permeated oxygen through the membrane. The swelling ratio [δ] was estimated from the volume change of the membrane.
PO2 of SPES was lower, while δ of SPES was higher than these of Nafion. Firstly, to discuss the effect of ionomer swelling, the porosity of catalyst layer was estimated by considering the volumes of entire catalyst layer, Pt/C, ionomer, and PTFE. The porosity of SPES-25 dropped significantly compared with that of Nafion-based electrode. Besides, the effect of ionomer swelling decreased with decreasing RH. This means that, if the blocking of secondary pore caused by the SPES swelling is the main influence factor, the performance would improve with decreasing RH. Secondly, to discuss a difficulty of the oxygen permeation through the ionomer layer, the resistance of oxygen permeation was calculated from PO2, δ, and the density. The oxygen permeation through the SPES ionomer layer of the SPES-25 is much more difficult than that through the Nafion ionomer layer of the Nafion-25. Furthermore, the effect of resistance increased with decreasing RH. This means that, if the oxygen permeation through the ionomer layer is the main cause of performance decrement, the performance would become lower with decreasing RH.
Therefore, the humidity dependence of performance of MEAs was investigated. The performance of MEA-SPES-25 improved with decreasing RH. These results indicate that the main cause of performance decrement is not the resistance of oxygen permeation but the inhibition of oxygen diffusion by blocking a secondary pore caused by ionomer swelling. Additionally, the performance of MEA-SPES-5 with thin layer of SPES ionomer was high and hardly changed with changing RH. This is because the thinner layer of SPES ionomer is not affected by the inhibition of oxygen diffusion by blocking. The results with MEA-SPES-5 also suggest that the broadened secondary pore enables to maintain the performance of MEA with the hydrocarbon ionomer in the catalyst layer. Therefore, the optimized structure of the catalyst layer will be fabricated by not only using the ionomer with low swelling ratio but also extending the secondary pore of the catalyst layer.