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References 19. Hogarth, M. and G. Hards, Direct methanol fuel cells. Platinum Metals Review, 1996. 40(4): p. 150-159. 20. Surampudi, S., ., Advances in direct oxidation methanol fuel cells. Journal of Power Sources, 1994. 47(3): p. 377-385. 21. Scott, K. and A.K. Shukla, Direct methanol fuel cells: fundamentals, problems and perspectives, in Modern Aspects of Electrochemistry No. 40. 2007, Springer. p. 127-227. 22. Heinzel, A. and V. Barragan, A review of the state-of-the-art of the methanol crossover in direct methanol fuel cells. Journal of Power Sources, 1999. 84(1): p. 70-74. 23. Ravikumar, M. and A. Shukla, Effect of Methanol Crossover in a Liquid‐Feed Polymer‐Electrolyte Direct Methanol Fuel Cell. Journal of the Electrochemical Society, 1996. 143(8): p. 2601-2606. 24. Shukla, A., M. Ravikumar, and K. Gandhi, Direct methanol fuel cells for vehicular applications. Journal of solid state electrochemistry, 1998. 2(2): p. 117-122. 25. Shukla, A., Ravikumar, M.K., Neergat, M. and Gandhi, K.S., A 5 W liquid-feed solid-polymer-electrolyte direct methanol fuel cell stack with stainless steel. Journal of applied electrochemistry, 1999. 29(1): p. 129-132. 26. Liu, J., Zhao, T.S., Chen, R. and Wong, C.W., The effect of methanol concentration on the performance of a passive DMFC. Electrochemistry Communications, 2005. 7(3): p. 288-294. 27. Jung, D.H., Lee, C.H., Kim, C.S. and Shin, D.R., Performance of a direct methanol polymer electrolyte fuel cell. Journal of Power Sources, 1998. 71(1): p. 169-173. 28. Ahmed, M. and I. Dincer, A review on methanol crossover in direct methanol fuel cells: challenges and achievements. International Journal of Energy Research, 2011. 35(14): p. 1213-1228. 29. Liu, J., Zhao, T.S., Liang, Z.X. and Chen, R., Effect of membrane thickness on the performance and efficiency of passive direct methanol fuel cells. Journal of Power Sources, 2006. 153(1): p. 61-67. 30. Zhang, Y., Cai, W., Si, F., Ge, J., Liang, L., Liu, C. and Xing, W., A modified Nafion membrane with extremely low methanol permeability via surface coating of sulfonated organic silica. Chemical Communications, 2012. 48(23): p. 2870- 2872. 31. Wong, C. and R.S. Bollampally, Thermal conductivity, elastic modulus, and coefficient of thermal expansion of polymer composites filled with ceramic particles for electronic packaging. Journal of Applied Polymer Science, 1999. 74(14): p. 3396-3403. 32. Kerres, J., Zhang, W., Jorissen, L. and Gogel, V., Application of different types of polyaryl-blend-membranes in DMFC. Journal of New Materials for Electrochemical Systems, 2002. 5(2): p. 97-108. 33. Flanigen, E.M., J. Jansen, and H. van Bekkum, Introduction to Zeolite Science and Practice. Vol. 58. 1991: Elsevier. 34. Liebau, F., Zeolites and clathrasils—two distinct classes of framework silicates. Zeolites, 1983. 3(3): p. 191-193. 35. Smith, J., Definition of a zeolite. Zeolites, 1984. 4(4): p. 309-310. Narayanan, S.R., Vamos, E., Frank, H., Halpert, G., LaConti, A., Kosek, J., Prakash, G.S. and Olah, G.A Sirhan AL-Batty Page 187PDF Image | Membrane Electrode Assembly Modification by Zeolite and Graphene Oxide
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