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21. B. Hammer, J.K. Norskov, Theroethical surface science and catalysis – Calculations and concepts, in Advances in Catalysis, vol. 45: Impact of Surface Science on Catalysis, (Wiley-VCH,
Weinheim, 2000), pp. 71–129
22. J.A. Herron, S. Tonelli, M. Mavrikakis, Atomic and molecular adsorption on Ru(0001). Surf.
Sci. 614, 64–74
23. J.A. Turner, A realizable renewable energy future. Science 285(5428), 687–689 (1999)
24. J.O.M. Bockris, B.E. Conway, E. Yeager, R.E. White, Comprehensive Treatise of
Electrochemistry. Vol. 2: Electrochemical Processing (Plenum Press, New York, 1981),
pp. 1–105
25. S.A. Grigoriev, V.I. Porembsky, V.N. Fateev, Pure hydrogen production by PEM electrolysis
for hydrogen energy. Int. J. Hydrog. Energy 31, 171–175 (2006)
26. N. Krstajić, M. Popović, B. Grgur, M. Vojnović, D. Šepa, On the kinetics of the hydrogen
evolution reaction on nickel in alkaline solution. Part I. The mechanism. J. Electroanal. Chem.
512, 16–26 (2001)
27. S. Trasatti, Work function, electronegativity, and electrochemical behavior of metals:
III. Electrolytic hydrogen evolution in acid solutions. J. Electroanal. Chem. 39, 163–184
(1972)
28. S. Srinivasan, F.J. Salzano, Prospects for the hydrogen production by water electrolysis to be
competitive with conventional methods. Int. J. Hydrog. Energy 2, 53–59 (1977)
29. N. Elezović, V.D. Jović, N.V. Krstajić, Kinetics of the hydrogen evolution reaction on Fe-Mo
film deposited on mild steel support in alkaline solution. Electrochim. Acta 50(28), 5594–5601
(2005)
30. M.M. Jakšić, Brewer intermetallic phases as synergetic electrocatalysts for hydrogen evolution. Mater. Chem. Phys. 22, 1–26
31. G. Imarisio, Progress in water electrocatalysis at the conclusion of the first hydrogen programme of the European communities. Int. J. Hydrog. Energy 6, 153–158 (1981)
32. D. Galizzioli, F. Tantardini, S. Trasatti, Ruthenium dioxide: A new electrode material. II. Nonstoichiometry and energetics of electrode reactions in acid solutions. J. Appl. Electrochem. 5,
203–214 (1975)
33. D. Baronetto, N. Krstajić, S. Trassatti, Reply to: “Note on a method to interrelate inner and
outer electrode areas” by H.Vogt. Electrochim. Acta 39, 2359–2362 (1994)
34. P. Ferrin, S. Kandoi, A.U. Nilekar, M. Mavrikakis, Hydrogen adsorption, absorption and diffusion on and in transition metal surfaces: A DFT study. Surf. Sci. 606, 679–689
35. R.R. Adzic, J. Zhang, K. Sasaki, M.B. Vukmirovic, M. Shao, J.X. Wang, A.U. Nilekar,
M. Mavrikakis, J.A. Valerio, F. Uribe, Platinum monolayer fuel cell electrocatalysts. Top.
Catal. 46, 249–262 (2007)
36. M.B. Vukmirovic, P. Liu, J.T. Muckerman, R.R. Adzic, Electrodeposition of Pt onto RuO2(110)
single-crystal surface. J. Phys. Chem. C 111, 15306 (2007)
37. J. Tafel, The polarisation of cathodic hydrogen development. Z Phys Chem Stoch Verwandt 50,
641–712 (1905)
38. J. Heyrovsky, A theory of overpotential. Recl Trav Chim Des Pays-Bas 46, 582–585 (1927)
39. T. Erdey-Gruz, M. Volmer, The theory of hydrogen high tension. Z Phys Chem Abt Chem
Thermodyn Kin Elektrochem Eig 150, 203–213 (1930)
40. K. Kunimatsu, H. Uchida, M. Osawa, et al., In situ infrared spectroscopic and electrochemical
study of hydrogen electro-oxidation on Pt electrode in sulfuric acid. J. Electroanal. Chem. 587,
299–307 (2006)
41. G. Jerkiewicz, Hydrogen sorption at/in electrodes. Prog. Surf. Sci. 57, 137–186 (1998)
42. J.X. Wang, T.E. Springer, P. Liu, et al., Hydrogen oxidation reaction on Pt in acidic media:
Adsorption isotherm and activation free energies. J. Phys. Chem. C 111, 12425–12433 (2007)
43. E. Skulason, V. Tripkovic, M.E. Bjorketun, et al., Modeling the electrochemical hydrogen oxidation and evolution reactions on the basis of density functional theory calculations. J. Phys.
Chem. C 114, 22374 (2010)
References
21. B. Hammer, J.K. Norskov, Theroethical surface science and catalysis – Calculations and concepts, in Advances in Catalysis, vol. 45: Impact of Surface Science on Catalysis, (Wiley-VCH,
Weinheim, 2000), pp. 71–129
22. J.A. Herron, S. Tonelli, M. Mavrikakis, Atomic and molecular adsorption on Ru(0001). Surf.
Sci. 614, 64–74
23. J.A. Turner, A realizable renewable energy future. Science 285(5428), 687–689 (1999)
24. J.O.M. Bockris, B.E. Conway, E. Yeager, R.E. White, Comprehensive Treatise of
Electrochemistry. Vol. 2: Electrochemical Processing (Plenum Press, New York, 1981),
pp. 1–105
25. S.A. Grigoriev, V.I. Porembsky, V.N. Fateev, Pure hydrogen production by PEM electrolysis
for hydrogen energy. Int. J. Hydrog. Energy 31, 171–175 (2006)
26. N. Krstajić, M. Popović, B. Grgur, M. Vojnović, D. Šepa, On the kinetics of the hydrogen
evolution reaction on nickel in alkaline solution. Part I. The mechanism. J. Electroanal. Chem.
512, 16–26 (2001)
27. S. Trasatti, Work function, electronegativity, and electrochemical behavior of metals:
III. Electrolytic hydrogen evolution in acid solutions. J. Electroanal. Chem. 39, 163–184
(1972)
28. S. Srinivasan, F.J. Salzano, Prospects for the hydrogen production by water electrolysis to be
competitive with conventional methods. Int. J. Hydrog. Energy 2, 53–59 (1977)
29. N. Elezović, V.D. Jović, N.V. Krstajić, Kinetics of the hydrogen evolution reaction on Fe-Mo
film deposited on mild steel support in alkaline solution. Electrochim. Acta 50(28), 5594–5601
(2005)
30. M.M. Jakšić, Brewer intermetallic phases as synergetic electrocatalysts for hydrogen evolution. Mater. Chem. Phys. 22, 1–26
31. G. Imarisio, Progress in water electrocatalysis at the conclusion of the first hydrogen programme of the European communities. Int. J. Hydrog. Energy 6, 153–158 (1981)
32. D. Galizzioli, F. Tantardini, S. Trasatti, Ruthenium dioxide: A new electrode material. II. Nonstoichiometry and energetics of electrode reactions in acid solutions. J. Appl. Electrochem. 5,
203–214 (1975)
33. D. Baronetto, N. Krstajić, S. Trassatti, Reply to: “Note on a method to interrelate inner and
outer electrode areas” by H.Vogt. Electrochim. Acta 39, 2359–2362 (1994)
34. P. Ferrin, S. Kandoi, A.U. Nilekar, M. Mavrikakis, Hydrogen adsorption, absorption and diffusion on and in transition metal surfaces: A DFT study. Surf. Sci. 606, 679–689
35. R.R. Adzic, J. Zhang, K. Sasaki, M.B. Vukmirovic, M. Shao, J.X. Wang, A.U. Nilekar,
M. Mavrikakis, J.A. Valerio, F. Uribe, Platinum monolayer fuel cell electrocatalysts. Top.
Catal. 46, 249–262 (2007)
36. M.B. Vukmirovic, P. Liu, J.T. Muckerman, R.R. Adzic, Electrodeposition of Pt onto RuO2(110)
single-crystal surface. J. Phys. Chem. C 111, 15306 (2007)
37. J. Tafel, The polarisation of cathodic hydrogen development. Z Phys Chem Stoch Verwandt 50,
641–712 (1905)
38. J. Heyrovsky, A theory of overpotential. Recl Trav Chim Des Pays-Bas 46, 582–585 (1927)
39. T. Erdey-Gruz, M. Volmer, The theory of hydrogen high tension. Z Phys Chem Abt Chem
Thermodyn Kin Elektrochem Eig 150, 203–213 (1930)
40. K. Kunimatsu, H. Uchida, M. Osawa, et al., In situ infrared spectroscopic and electrochemical
study of hydrogen electro-oxidation on Pt electrode in sulfuric acid. J. Electroanal. Chem. 587,
299–307 (2006)
41. G. Jerkiewicz, Hydrogen sorption at/in electrodes. Prog. Surf. Sci. 57, 137–186 (1998)
42. J.X. Wang, T.E. Springer, P. Liu, et al., Hydrogen oxidation reaction on Pt in acidic media:
Adsorption isotherm and activation free energies. J. Phys. Chem. C 111, 12425–12433 (2007)
43. E. Skulason, V. Tripkovic, M.E. Bjorketun, et al., Modeling the electrochemical hydrogen oxidation and evolution reactions on the basis of density functional theory calculations. J. Phys.
Chem. C 114, 22374 (2010)
References
