Nanofiber Electrodes with Low Platinum Loading for High Power Hydrogen/Air PEM Fuel Cells

被引:53
作者
Brodt, Matthew [1 ]
Wycisk, Ryszard [1 ]
Pintauro, Peter N. [1 ]
机构
[1] Vanderbilt Univ, Dept Chem & Biomol Engn, Nashville, TN 37235 USA
基金
美国国家科学基金会;
关键词
CATALYST LAYERS; FIBER MATS; PERFORMANCE; REDUCTION; MEMBRANES; CATHODES; SUPPORTS;
D O I
10.1149/2.008308jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Membrane-electrode-assemblies (MEAs) were fabricated with electrospun nanofiber electrodes containing Johnson-Matthey (JM) HiSpec 4000 catalyst and a Nafion 212 membrane. MEA performance was evaluated in a hydrogen/air fuel cell, where power output was correlated with cathode Pt loading (0.029-0.107 mg(Pt)/cm(2)) and changes in fuel cell temperature (60 degrees C and 80 degrees C), pressure (up to 3.0 atm), and feed gas flow rates. In all experiments, the nanofiber anode had a fixed Pt loading of 0.10 mg/cm(2). The mass activity (0.16 A/mg(Pt) at 0.9 V) and electrochemical surface area (similar to 41 m(2)/g) of nanofiber cathodes were very high and more power was generated from nanofiber electrode MEAs than from a conventional MEA with decal electrodes. Thus, the maximum power density for H-2/air fuel cell operation at 80 degrees C, 1 atm (ambient) pressure, 125 sccm H-2, and 500 sccm air was 437 mW/cm(2) for a nanofiber cathode at 0.065 mg(Pt)/cm(2) vs. 400 mW/cm(2) for a decal MEA with cathode/anode Pt loadings of 0.104/0.40 mg/cm(2). Similarly, an electrospun cathode with a Pt loading of 0.055 mg/cm(2) produced a maximum power density of 906 mW/cm(2) at 80 degrees C and 3 atm pressure with 2000 sccm fully humidified air and 500 sccm H-2. (C) 2013 The Electrochemical Society. All rights reserved.
引用
收藏
页码:F744 / F749
页数:6
相关论文
共 25 条
[1]   Silicon oxide Nafion composite membranes for proton-exchange membrane fuel cell operation at 80-140° C [J].
Adjemian, KT ;
Lee, SJ ;
Srinivasan, S ;
Benziger, J ;
Bocarsly, AB .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2002, 149 (03) :A256-A261
[2]   Morphological Control of Electrospun Nafion Nanofiber Mats [J].
Ballengee, J. B. ;
Pintauro, P. N. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2011, 158 (05) :B568-B572
[3]   High voltage stability of nanostructured thin film catalysts for PEM fuel cells [J].
Debe, Mark K. ;
Schmoeckel, Alison K. ;
Vernstrorn, George D. ;
Atanasoski, Radoslav .
JOURNAL OF POWER SOURCES, 2006, 161 (02) :1002-1011
[4]   Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs [J].
Gasteiger, HA ;
Kocha, SS ;
Sompalli, B ;
Wagner, FT .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2005, 56 (1-2) :9-35
[5]   Preparation of PVdF nanofiber membranes by electrospinning and their use as secondary battery separators [J].
Hwang, Kyungho ;
Kwon, Byeongmin ;
Byun, Hongsik .
JOURNAL OF MEMBRANE SCIENCE, 2011, 378 (1-2) :111-116
[6]   Performance of thin-film cathodes for proton-exchange-membrane fuel cells based on high-surface-area carbon supports [J].
Janssen, G. J. M. ;
Sitters, E. F. .
JOURNAL OF POWER SOURCES, 2007, 171 (01) :8-17
[7]   Electrospinning for tissue engineering scaffolds [J].
Lannutti, J. ;
Reneker, D. ;
Ma, T. ;
Tomasko, D. ;
Farson, D. F. .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2007, 27 (03) :504-509
[8]   Developing protective textile materials as barriers to liquid penetration using melt-electrospinning [J].
Lee, Seungsin ;
Obendorf, S. Kay .
JOURNAL OF APPLIED POLYMER SCIENCE, 2006, 102 (04) :3430-3437
[9]   PEM fuel cell electrodes [J].
Litster, S ;
McLean, G .
JOURNAL OF POWER SOURCES, 2004, 130 (1-2) :61-76
[10]   Electrospun nanocomposite fiber mats as gas sensors [J].
Luoh, R. ;
Hahn, H. Thomas .
COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (14) :2436-2441