Open Access
Issue
E3S Web Conf.
Volume 16, 2017
11th European Space Power Conference
Article Number 17001
Number of page(s) 5
Section Energy Storage Posters
DOI https://doi.org/10.1051/e3sconf/20171617001
Published online 23 May 2017
  1. D. Zhai, H. Du, B. Li, Y. Zhu, F. Kang. Porous graphitic carbons prepared by combining chemical activation with catalytic graphitization Carbon 49 (2011) 725–729 [Google Scholar]
  2. H. Jin, H. Zhang, Y. Ma, T. Xua, H. Zhong, M.J. Wang. Stable support based on highly graphitic carbon xerogel for proton exchange membrane fuel cells. Power Sources 195 (2010) 6323–6328 [CrossRef] [Google Scholar]
  3. F. Alcaide, G. Álvarez, O. Miguel, M.J. Lázaro. Stability of carbon nanofibers as catalyst supports for PEMFC. Book of Abstracts. 2nd CARISMA International Conference on Progress in MEA 2010, La Grande Motte (France), 2010 p. 151 [Google Scholar]
  4. G. Inzelt, M. Pineri, J.W. Schultze, M.A. Vorotyntsev. Electron and proton conducting polymers: recent developments and prospects Electrochim. Acta 45 (2000) 2403–2421. [Google Scholar]
  5. E. Antolini, E. Gonzalez. Solid State Ionics. Ceramic materials as supports for low-temperature fuel cell catalysts. 180 (2009) 746–763 [Google Scholar]
  6. S.Y. Huang, P. Ganesan, B.N. Popov. Titania supported platinum catalyst with high electrocatalytic activity and stability for polymer electrolyte membrane fuel cell. Applied Catalysis B: Environmental 102 (2011) 71–77 [CrossRef] [Google Scholar]
  7. I. Cerri, T. Nagami, B.E. Hayden, J.C. Davies. Durable electrocatalysts for PEMFC. Proceeding of the Fundamentals and Developments of Fuel Cell Conference, Grenoble (France), 2011 p 282–283 [Google Scholar]
  8. K. Sasaki, F. Takasaki, Y. Shiratori, Z. Noda. Alternative electrocatalyst support materials for polymer electrolyte fuel cells : semiconducting oxides and carbon nanofibers. Proceedings of the 18th World Hydrogen Energy Conference (2010) [Google Scholar]
  9. L. Xiong, A. Manthiram. Synthesis and characterization of methanol tolerant Pt/TiOx/C nanocomposites for oxygen reduction in direct methanol fuel Cells, Electrochim. Acta 49 (2004) 4163–4170 [CrossRef] [Google Scholar]
  10. A. Bauer, C. Songa, A. Ignaszaka, R. Huia, J. Zhanga, L. Chevallier et al. Improved stability of mesoporous carbon fuel cell catalyst support through incorporation of TiO2. Electrochim. Acta 55 (2010) 8365–8370 [CrossRef] [Google Scholar]
  11. H. Wang, A. Kong, Mesoporous fluorine-doped carbon as efficient cathode material for oxygen reduction reaction, materials letters 136 (2014) 384–387 [Google Scholar]
  12. X. Sun, Y. Zhang, P. Song, J. Pan, L. Zhuang, W. Xu, W. Xing, Fluorine-Doped Carbon Blacks: Highly Efficient Metal-Free Electrocatalysts for Oxygen Reduction Reaction ACS Catalysis 2013, 3, 1726–1729 [Google Scholar]
  13. X. Sun, P. Song, T. Chen, J. Liu, W. Xu, Fluorinedoped BP 2000: highly efficient metal-free electrocatalysts for acidic oxygen reduction reaction with superlow H2O2 yield, Chem. Commun., 2013,49, 10296–10298 [Google Scholar]
  14. M. Ouattara-Brigaudet, S. Berthon-Fabry, C. Beauger, M. Chatenet, N. Job, M. Sennour, P. Achard, Influence of the carbon texture of platinum/carbon aerogel electrocatalysts on their behavior in Proton Exchange Membrane Fuel Cell cathode, International Journal of Hydrogen Energy 37 (2012) 9742–9757 [CrossRef] [Google Scholar]

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