Optimizing Catalyst Loading Ratio between the Anode and Cathode for Ultralow Catalyst Usage in Polymer Electrolyte Membrane Fuel Cell

被引:5
作者
Lee, Jinwon [1 ]
Seol, Changwook [1 ]
Kim, Joondong [2 ]
Jang, Segeun [3 ]
Kim, Sang Moon [1 ]
机构
[1] Incheon Natl Univ, Dept Mech Engn, Incheon 22012, South Korea
[2] Incheon Natl Univ, Dept Elect Engn, Incheon 22012, South Korea
[3] Kookmin Univ, Sch Mech Engn, Seoul 02707, South Korea
关键词
catalyst loading; department of energy target; fuel cells; membranes; optimized ratio; CHARGE-TRANSFER; PERFORMANCE; PLATINUM; LAYER; DEPENDENCE; DEPOSITION; POWER;
D O I
10.1002/ente.202100113
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
With increasing demand for high-efficiency and clean energy sources, the polymer electrolyte membrane fuel cell (PEMFC) has received attention in a wide range of fields including transportation and back-up power. For securing the economic viability of PEMFC, the U.S. Department of Energy (DOE) provides the target of the total Pt catalyst loading as 0.125 mg(Pt) cm(-2) on both cathode and anode, which is much less than that currently used (>0.25 mg(Pt) cm(-2) for cathode). An optimized ratio of catalyst loading between the anode and cathode with a fixed Pt catalyst loading according to the DOE target is figured out by conducting diverse electrochemical measurements with varying the catalyst loading ratio in single-cells. Among the experimental set, the membrane electrode assembly (MEA) with 70% catalyst loading on the cathode side shows the highest performance with the maximum power density of 643 mW cm(-2), while the MEA with 90% catalyst loading on the cathode side exhibits inferior performance. Experimental results are validated by suggesting the theoretical model, which was established based on considering both the electrochemical kinetics of hydrogen oxidation and oxygen reduction reaction.
引用
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页数:10
相关论文
共 41 条
[1]   Modeling charge transfer in a PEM fuel cell using solar hydrogen [J].
Abderezzak, Bilal ;
Khelidj, Benyoucef ;
Abbes, Miloud Tahar .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (03) :1593-1603
[2]  
Barbir F, 2005, SUSTAIN WORLD SER, P1
[3]  
Barbir F., 2013, PEM Fuel Cells, V2nd
[4]   Carbon monoxide poisoning of proton exchange membrane fuel cells [J].
Baschuk, JJ ;
Li, XG .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2001, 25 (08) :695-713
[5]  
Beck F., 2002, Renewable Energy Policy Project
[6]   A semiempirical study of the temperature dependence of the anode charge transfer coefficient of a 6 kW PEM electrolyzer [J].
Biaku, C. Y. ;
Dale, N. V. ;
Mann, M. D. ;
Salehfar, H. ;
Peters, A. I. ;
Han, T. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (16) :4247-4254
[7]   Plasma sputtering deposition of platinum into porous fuel cell electrodes [J].
Brault, P ;
Caillard, A ;
Thomann, AL ;
Mathias, J ;
Charles, C ;
Boswell, RW ;
Escribano, S ;
Durand, J ;
Sauvage, T .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2004, 37 (24) :3419-3423
[8]   Nanofiber Electrodes with Low Platinum Loading for High Power Hydrogen/Air PEM Fuel Cells [J].
Brodt, Matthew ;
Wycisk, Ryszard ;
Pintauro, Peter N. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2013, 160 (08) :F744-F749
[9]   High Pt utilization PEMFC electrode obtained by alternative ion-exchange/electrodeposition [J].
Chen, Siguo ;
Wei, Zidong ;
Li, Hua ;
Li, Li .
CHEMICAL COMMUNICATIONS, 2010, 46 (46) :8782-8784
[10]   Tutorial on the Fundamental Characteristics and Practical Properties of Nanostructured Thin Film (NSTF) Catalysts [J].
Debe, Mark K. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2013, 160 (06) :F522-F534