Title of article :
Effect of variation of hydrophobicity of anode diffusion media along the through-plane direction in direct methanol fuel cells
Author/Authors :
Kang، نويسنده , , Kyungmun and Park، نويسنده , , Sunghyun and Gwak، نويسنده , , Geonhui and Jo، نويسنده , , Arae and Kim، نويسنده , , Misun and Lim، نويسنده , , Young Don and Kim، نويسنده , , Whangi and Hong، نويسنده , , Taewhan and Kim، نويسنده , , Dongmin and Ju، نويسنده , , Hyunchul، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
7
From page :
1564
To page :
1570
Abstract :
Reducing methanol crossover from the anode to cathode in direct methanol fuel cells (DMFCs) is critical for attaining high cell performance and fuel utilization, particularly when highly concentrated methanol fuel is fed into DMFCs. In this study, we present a novel design of anode diffusion media (DM) wherein spatial variation of hydrophobicity along the through-plane direction is realized by special polytetrafluoroethylene (PTFE) coating procedure. According to the capillary transport theory for porous media, the anode DM design can significantly affect both methanol and water transport processes in DMFCs. To examine its influence, three different membrane-electrode assemblies are fabricated and tested for various methanol feed concentrations. Polarization curves show that cell performance at high methanol feed concentration conditions is greatly improved with the anode DM design with increasing hydrophobicity toward the anode catalyst layer. In addition, we investigate the influence of the wettability of the anode microporous layer (MPL) on cell performance and show that for DMFC operation at high methanol feed concentration, the hydrophilic anode MPL fabricated with an ionomer binder is more beneficial than conventional hydrophobic MPLs fabricated with PTFE. This paper highlights that controlling wetting characteristics of the anode DM and MPL is of paramount importance for mitigating methanol crossover in DMFCs.
Keywords :
High concentration methanol fuel , Direct methanol fuel cell , Diffusion media , Methanol crossover
Journal title :
International Journal of Hydrogen Energy
Serial Year :
2014
Journal title :
International Journal of Hydrogen Energy
Record number :
1866942
Link To Document :
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