PTFE-based solid polymer electrolyte membrane for high-temperature fuel cell applications

被引:22
|
作者
Reichman, S. [1 ]
Ulus, A. [1 ]
Peled, E. [1 ]
机构
[1] Tel Aviv Univ, Sch Chem, IL-69978 Tel Aviv, Israel
关键词
D O I
10.1149/1.2429046
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The demand for a solid polymer electrolyte membrane for fuel-cell systems, capable of withstanding temperatures above 130 C, has prompted this study. A low-cost, highly conductive, nanoporous proton-conducting membrane, based on a polytetrafluoroethylene (PTFE) backbone has been developed. It comprises a nonconductive nano-size ceramic powder, PTFE matrix, and an aqueous acid. Impregnation of the ceramic powder into the PTFE matrix was carried out using sol-gel synthesis. The preparation procedures were studied and the membrane was characterized. This membrane demonstrated promising properties of high thermal stability (up to 300 degrees C), pressure-retention difference up to 2.2 bars, room-temperature conductivity up to 0.11 S cm(-1) (10-15% (w/w) SiO2, 3 M H2SO4), a hydrophilic/hydrophobic pore ratio of 1:1 and very high water flow at low pressure. A nonoptimized direct-methanol fuel cell with a 137 mu m thick membrane was assembled and tested. It produced 133 mW cm(-2) at 80 degrees C, 0.05 bars (g) dry air, 1.9 stoich (air), and 198 mW cm(-2) at 110 degrees C, 2.2 bars (g) dry air, 1.9 stoich (air). (c) 2007 The Electrochemical Society.
引用
收藏
页码:B327 / B333
页数:7
相关论文
共 50 条
  • [31] Effect of Compression Cycling on Polybenzimidazole-based High-Temperature Polymer Electrolyte Membrane Fuel Cells
    Pinar, F. J.
    Rastedt, M.
    Pilinski, N.
    Wagner, P.
    FUEL CELLS, 2015, 15 (01) : 140 - 149
  • [32] Range Extender Vehicle Concept Based on High Temperature Polymer Electrolyte Membrane Fuel Cell
    Dickinson, Dave
    Nasri, Mounir
    2014 NINTH INTERNATIONAL CONFERENCE ON ECOLOGICAL VEHICLES AND RENEWABLE ENERGIES (EVER), 2014,
  • [33] Scale-up of a high temperature polymer electrolyte membrane fuel cell based on polybenzimidazole
    Javier Pinar, F.
    Canizares, Pablo
    Rodrigo, Manuel A.
    Ubeda, Diego
    Lobato, Justo
    JOURNAL OF POWER SOURCES, 2011, 196 (09) : 4306 - 4313
  • [34] Influence of PTFE-binder content on coverage of Pt/C electrode in a high-temperature polymer-electrolyte membrane fuel cells
    Kwon, Sung Hyun
    Lee, Ji Hye
    Lee, So Young
    Kim, Hyoung-Juhn
    Lee, Seung Geol
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [35] Improvement of fuel cell performances through the enhanced dispersion of the PTFE binder in electrodes for use in high temperature polymer electrolyte membrane fuel cells
    Lee, Woo Jae
    Lee, Ju Sung
    Park, Hee-Young
    Park, Hyun Seo
    Lee, So Young
    Song, Kwang Ho
    Kim, Hyoung-Juhn
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (57) : 32825 - 32833
  • [36] Challenges and opportunities for characterisation of high-temperature polymer electrolyte membrane fuel cells: a review
    Zucconi, Adam
    Hack, Jennifer
    Stocker, Richard
    Suter, Theo A. M.
    Rettie, Alexander J. E.
    Brett, Dan J. L.
    JOURNAL OF MATERIALS CHEMISTRY A, 2024, 12 (14) : 8014 - 8064
  • [37] Developing high-temperature CO tolerant polymer electrolyte membrane fuel cells.
    Tulyani, S
    Adjemian, KT
    Krishnan, L
    Yang, C
    Srinivasan, S
    Bocarsly, A
    Benziger, J
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2002, 224 : U572 - U573
  • [38] Influence of carbon monoxide on the cathode in high-temperature polymer electrolyte membrane fuel cells
    Sondergaard, S.
    Cleemann, L. N.
    Jensen, J. O.
    Bjerrum, N. J.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (05) : 3309 - 3315
  • [39] Design of Highly Durable Electrocatalyst for High-Temperature Polymer Electrolyte Fuel Cell
    Fujigaya, T.
    Berber, M. R.
    Nakashima, N.
    POLYMER ELECTROLYTE FUEL CELLS 14, 2014, 64 (03): : 159 - 169
  • [40] Evaluation of Electrolyte Additives for High-Temperature Polymer Electrolyte Fuel Cells
    Mack, Florian
    Galbiati, Samuele
    Gogel, Viktor
    Joerissen, Ludwig
    Zeis, Roswitha
    CHEMELECTROCHEM, 2016, 3 (05): : 770 - 773