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Renewable Electrolysis using Graphene electrodes

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Debajyoti Bose et al /International Journal of ChemTech Research, 2017,10(4): 103-114. 114 24. Grigoriev, S. A.; Millet, P.; Porembsky, V. I.; Fateev, V. N. Development and Preliminary Testing of a Unitized Regenerative Fuel Cell Based on PEM Technology; Int. J. Hydrogen Energy March 2011, 36 (6), 4164-4168. 25. Hauch, A.; Jensen, S.H.; Mogensen, M. Ni/YSZ Electrodes in Solid Oxide Electrolyzer cells, Proceedings of the 26th Risø International Symposium on Materials Science: Solid State Electrochemistry, Roskilde, Denmark, 2005, pp. 203e208. 26. Perfiliev, M. V.; Demin, A. K.; Kuzin, B. L.; Lipilin, A. High- Temperature Gases Electrolysis; Science: Moscow; 232. 27. O’Brien, J. E.; Stoots, C. M.; Herrings, J. S., et al. Hydrogen Production Performance of 10-Cell Planar Solid Oxide Electrolysis Stack; J. Fuel Cell Sci. Technol. May, 2006. 28. Quandt, K. H.; Streicher, R. Concept and Design of a 3.5 MW Pilot Plant for High Temperature Electrolysis of Water Vapor; Int. J. Hydrogen Energy 1985, 11, 309e315. 29. Korobtsev, S.V. Development of Fundamental Technologies of Production and Use of Hydrogen based on Solid Oxide Electrochemical Reversible High-Temperature Systems; Report on Round- Table Meeting “Russian Research and Development in the Field of Hydrogen Technologies”: Moscow, February 8, 2006. 30. Wallace, P. R. Th e band theory of graphite. Phys. Rev. 71, 622–634 (1947). 31. Geim, Andre K., and Konstantin S. Novoselov. "The rise of graphene." Nature materials 6.3 (2007): 183-191. 32. Slonczewski, J. C. & Weiss, P. R. Band structure of graphite. Phys. Rev. 109, 272–279 (1958). 33. McClure, J. W. Diamagnetism of graphite. Phys. Rev. 104, 666–671 (1956). 34. Novoselov, K. S. et al. Electric fi eld eff ect in atomically thin carbon fi lms. Science 306, 666–669 (2004). 35. Novoselov, K. S. et al. Two-dimensional gas of massless Dirac fermions in graphene. Nature 438, 197– 200 (2005). 36. Basu, K.; Kumari TG; Kharkwall, A.; Abdin, MZ.; Kumar, V.; Varma, A.; (2016) Study of Piriformospora indica as bioinoculant for nutrient management in Calcareous soil, Int.J. ChemTech Res., 9(1),pp 73-81. 37. Alnassar1, M.; Tayfour, A.; Afif, R.; (2016). The Study of Lactose Effect on Citric Acid Production by Aspergillus niger PLA30 in Cheese whey. Int.J. ChemTech Res. ,9(1),pp 318-322. Roy, S., & Das, T. K. (2015). Protein capped silver nanoparticles from fungus: X-ray Diffraction Studies with Antimicrobial properties against bacteria. Int J ChemTech Res, 7, 1452-1459. El-Sayed, O. H., Asker, M. M., Shash, S. M., & Hamed, S. R. (2015). Isolation, Structure elucidation and Biological Activity of Di-(2-ethylhexyl) phthalate Produced by Penicillium janthinellum 62. Int J ChemTech Res, 8(1), 58-66. Varghese, L. R., & Das, N. (2015). Application of nano-biocomposites for remediation of heavy metals from aqueous environment: An Overview. Int. J. Chemtech Res, 8(2). 38. 39. 40. *****

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