Membrane Electrode Assembly Modification by Zeolite and Graphene Oxide

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Membrane Electrode Assembly Modification by Zeolite and Graphene Oxide ( membrane-electrode-assembly-modification-by-zeolite-and-grap )

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References REFERENCES 1. Horvath, H., Atmospheric light absorption—A review. Atmospheric Environment. Part A. General Topics, 1993. 27(3): p. 293-317. 2. Jentsch, M.F., A.S. Bahaj, and P.A. James, Climate change future proofing of buildings—Generation and assessment of building simulation weather files. Energy and Buildings, 2008. 40(12): p. 2148-2168. 3. McPherson, E.G., Atmospheric carbon dioxide reduction by Sacramento's urban forest. Journal of Arboriculture, 1998. 24: p. 215-223. 4. Caldeira, K. and M.E. Wickett, Oceanography: anthropogenic carbon and ocean pH. Nature, 2003. 425(6956): p. 365-365. 5. Murray, E.P., T. Tsai, and S. Barnett, A direct-methane fuel cell with a ceria- based anode. Nature, 1999. 400(6745): p. 649-651. 6. Litster, S., D. Sinton, and N. Djilali, Ex situ visualization of liquid water transport in PEM fuel cell gas diffusion layers. Journal of Power Sources, 2006. 154(1): p. 95-105. 7. Perry, M.L. and T.F. Fuller, A historical perspective of fuel cell technology in the 20th century. Journal-electrochmical society, 2002. 149(7): p. S59-S67. 8. Elabd, Y.A., C.W. Walker, and F.L. Beyer, Triblock copolymer ionomer membranes: Part II. Structure characterization and its effects on transport properties and direct methanol fuel cell performance. Journal of membrane science, 2004. 231(1): p. 181-188. 9. Larminie, J., A. Dicks, and M.S. McDonald, Fuel cell systems explained. Vol. 2. 2003: J. Wiley Chichester, UK. 10. Demirci, U.B., Direct liquid-feed fuel cells: thermodynamic and environmental concerns. Journal of Power Sources, 2007. 169(2): p. 239-246. 11. Song, C., Fuel processing for low-temperature and high-temperature fuel cells: Challenges, and opportunities for sustainable development in the 21st century. Catalysis today, 2002. 77(1): p. 17-49. 12. Ormerod, R.M., Solid oxide fuel cells. Chemical Society Reviews, 2003. 32(1): p. 17-28. 13. Dicks, A.L., Molten carbonate fuel cells. Current Opinion in Solid State and Materials Science, 2004. 8(5): p. 379-383. 14. Sammes, N., R. Bove, and K. Stahl, Phosphoric acid fuel cells: Fundamentals and applications. Current Opinion in Solid State and Materials Science, 2004. 8(5): p. 372-378. 15. McLean, G., G. F., T. Niet, S. Prince-Richard, and N. Djilali., An assessment of alkaline fuel cell technology. International Journal of Hydrogen Energy, 2002. 27(5): p. 507-526. 16. Bose, S., Kuila, T., Nguyen, T. X. H., Kim, N. H., Lau, K. T., & Lee, J. H., Polymer membranes for high temperature proton exchange membrane fuel cell: recent advances and challenges. Progress in Polymer Science, 2011. 36(6): p. 813-843. 17. Kreuer, K., On the development of proton conducting polymer membranes for hydrogen and methanol fuel cells. Journal of membrane science, 2001. 185(1): p. 29-39. 18. Liu, H., Song, C., Zhang, L., Zhang, J., Wang, H., & Wilkinson, D. P., A review of anode catalysis in the direct methanol fuel cell. Journal of Power Sources, 2006. 155(2): p. 95-110. Sirhan AL-Batty Page 186

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