94
6 Cooperative Active-Sites Mechanism
36. B.M. Reinhard, G. Niedner-Schatteburg, J. Phys. Chem. A 106, 7988–7992 (2002)
37. V.A. Mikhailov, P.E. Barran, A.J. Stace, Phys. Chem. Chem. Phys. 1, 3461–3465 (1999)
38. F. Li, L. Sun, J. Zhao, F. Xu, H.-Y. Zhou, Q.-M. Zhang, F.-L. Huang, Int. J. Hydrogen Energy
38, 6930–6937 (2013)
39. C.K. Siu, Z.F. Liu, J.S. Tse, J. Am. Chem. Soc. 124, 10846–10860 (2002)
40. S. Álvarez-Barcia, J.R. Flores, Chem. Phys. 374, 131–137 (2010)
41. S. Álvarez-Barcia, J.R. Flores, Chem. Phys. 382, 92–97 (2011)
42. S. Álvarez-Barcia, J.R. Flores, J. Phys. Chem. A 116, 8040–8050 (2012)
43. R. Hofmannsievert, A.W. Castleman Jr., J. Phys. Chem. 88, 3329–3333 (1984)
44. W. H. H. Woodward, PhD, The Pennsylvania State University, 2011.
45. K. Sugawara, F. Sobott, A.B. Vakhtin, J. Chem. Phys. 118, 7808–7816 (2003)
46. D.A. Daramola, G.G. Botte, Comput. Theo. Chem. 989, 7–17 (2012)
47. G.K. Koyanagi, V. Kapishon, D.K. Bohme, X. Zhang, H. Schwarz, Eur. J. Inorg. Chem.
1516–1521 (2010)
48. A. Grubisic, X. Li, G. Gantefoer, K.H. Bowen, H. Schnoeckel, F.J. Tenorio, A. Martinez, J.
Chem. Phys. 131, 184305 (2009)
49. M. Oncak, Y. Cao, M.K. Beyer, R. Zahradnik, H. Schwarz, Chem. Phys. Lett. 450, 268–273
(2008)
50. E.S. Kryachko, F. Remacle, J. Chem. Phys. 127, 194305 (2007)
51. A. Martinez, J. Braz. Chem. Soc. 16, 337–344 (2005)
52. K. Koszinowski, D. Schroder, H. Schwarz, Organometallics 23, 1132–1139 (2004)
53. K. Koszinowski, M. Schlangen, D. Schroder, H. Schwarz, Int. J. Mass Spectrom. 237, 19–23
(2004)
54. A. Antusek, M. Urban, A.J. Sadlej, J. Chem. Phys. 119, 7247–7262 (2003)
55. M.F. Zhou, M.H. Chen, L.N. Zhang, H. Lu, J. Phys. Chem. A 106, 9017–9023 (2002)
56. C. Lacaze-Dufaure, T. Mineva, N. Russo, J. Comput. Chem. 22, 1557–1564 (2001)
57. K.A. Jackson, M. Knickelbein, G. Koretsky, S. Srinivas, Chem. Phys. 262, 41–51 (2000)
58. S.E. Kooi, A.W. Castleman, Chem. Phys. Lett. 315, 49–54 (1999)
59. M. Garcia-Hernandez, N. Lopez, I.D. Moreira, J.C. Paniagua, F. Illas, Surf. Sci. 430, 18–28
(1999)
60. W.T. Chan, R. Fournier, Chem. Phys. Lett. 315, 257–265 (1999)
61. L. Lian, S.A. Mitchell, P.A. Hackett, D.M. Rayner, J. Chem. Phys. 104, 5338–5344 (1996)
62. A. Fahmi, R.A. vanSanten, Z. Phys. Chem. 197, 203–217 (1996)
63. U.N. Andersen, G. Bojesen, Int. J. Mass Spectrom. Ion Processes 153, 1–7 (1996)
64. B. J. Winter, T. D. Klots, E. K. Parks and S. J. Riley, Z. Phys. D: At., Mol. Clusters, 1991, 19,
381–384.
65. K. Fuke, S. Nonose, N. Kikuchi, K. Kaya, Chem. Phys. Lett. 147, 479–483 (1988)
66. L. Geng, C. Cui, Y. Jia, H. Wu, H. Zhang, B. Yin, Z.D. Sun, Z. Luo, J. Phys. Chem. A 124,
5879–5886 (2020)
67. A.N. Pestryakov, V.V. Lunin, N. Bogdanchikova, O.N. Temkin, E. Smolentseva, Fuel 110,
48–53 (2013)
68. M. Ichihashi, C.A. Corbett, T. Hanmura, J.M. Lisy, T. Kondow, J. Phys. Chem. A 109, 7872–
7880 (2005)
69. S. Keki, L. Nagy, G. Deak, M. Zsuga, L. Somogyi, A. Levai, J. Am. Soc. Mass Spectrom. 15,
879–883 (2004)
70. Y.L. Cao, X.A. Zhao, B. Xin, S.X. Xiong, Z.C. Tang, J. Mol. Struct. Theochem 683, 141–146
(2004)
71. S.H. Cai, K. Sohlberg, J. Mol. Catal. a-Chem. 193, 157–164 (2003)
72. G.M. Koretsky, M.B. Knickelbein, R. Rousseau, D. Marx, J. Phys. Chem. A 105, 11197–11203
(2001)
73. R. Rousseau, D. Marx, J. Chem. Phys. 112, 761–769 (2000)
74. A.M.L. Oiestad, E. Uggerud, Chem. Phys. 262, 169–177 (2000)
75. G. Dietrich, S. Kruckeberg, K. Lutzenkirchen, L. Schweikhard, C. Walther, J. Chem. Phys.
112, 752–760 (2000)
6 Cooperative Active-Sites Mechanism
36. B.M. Reinhard, G. Niedner-Schatteburg, J. Phys. Chem. A 106, 7988–7992 (2002)
37. V.A. Mikhailov, P.E. Barran, A.J. Stace, Phys. Chem. Chem. Phys. 1, 3461–3465 (1999)
38. F. Li, L. Sun, J. Zhao, F. Xu, H.-Y. Zhou, Q.-M. Zhang, F.-L. Huang, Int. J. Hydrogen Energy
38, 6930–6937 (2013)
39. C.K. Siu, Z.F. Liu, J.S. Tse, J. Am. Chem. Soc. 124, 10846–10860 (2002)
40. S. Álvarez-Barcia, J.R. Flores, Chem. Phys. 374, 131–137 (2010)
41. S. Álvarez-Barcia, J.R. Flores, Chem. Phys. 382, 92–97 (2011)
42. S. Álvarez-Barcia, J.R. Flores, J. Phys. Chem. A 116, 8040–8050 (2012)
43. R. Hofmannsievert, A.W. Castleman Jr., J. Phys. Chem. 88, 3329–3333 (1984)
44. W. H. H. Woodward, PhD, The Pennsylvania State University, 2011.
45. K. Sugawara, F. Sobott, A.B. Vakhtin, J. Chem. Phys. 118, 7808–7816 (2003)
46. D.A. Daramola, G.G. Botte, Comput. Theo. Chem. 989, 7–17 (2012)
47. G.K. Koyanagi, V. Kapishon, D.K. Bohme, X. Zhang, H. Schwarz, Eur. J. Inorg. Chem.
1516–1521 (2010)
48. A. Grubisic, X. Li, G. Gantefoer, K.H. Bowen, H. Schnoeckel, F.J. Tenorio, A. Martinez, J.
Chem. Phys. 131, 184305 (2009)
49. M. Oncak, Y. Cao, M.K. Beyer, R. Zahradnik, H. Schwarz, Chem. Phys. Lett. 450, 268–273
(2008)
50. E.S. Kryachko, F. Remacle, J. Chem. Phys. 127, 194305 (2007)
51. A. Martinez, J. Braz. Chem. Soc. 16, 337–344 (2005)
52. K. Koszinowski, D. Schroder, H. Schwarz, Organometallics 23, 1132–1139 (2004)
53. K. Koszinowski, M. Schlangen, D. Schroder, H. Schwarz, Int. J. Mass Spectrom. 237, 19–23
(2004)
54. A. Antusek, M. Urban, A.J. Sadlej, J. Chem. Phys. 119, 7247–7262 (2003)
55. M.F. Zhou, M.H. Chen, L.N. Zhang, H. Lu, J. Phys. Chem. A 106, 9017–9023 (2002)
56. C. Lacaze-Dufaure, T. Mineva, N. Russo, J. Comput. Chem. 22, 1557–1564 (2001)
57. K.A. Jackson, M. Knickelbein, G. Koretsky, S. Srinivas, Chem. Phys. 262, 41–51 (2000)
58. S.E. Kooi, A.W. Castleman, Chem. Phys. Lett. 315, 49–54 (1999)
59. M. Garcia-Hernandez, N. Lopez, I.D. Moreira, J.C. Paniagua, F. Illas, Surf. Sci. 430, 18–28
(1999)
60. W.T. Chan, R. Fournier, Chem. Phys. Lett. 315, 257–265 (1999)
61. L. Lian, S.A. Mitchell, P.A. Hackett, D.M. Rayner, J. Chem. Phys. 104, 5338–5344 (1996)
62. A. Fahmi, R.A. vanSanten, Z. Phys. Chem. 197, 203–217 (1996)
63. U.N. Andersen, G. Bojesen, Int. J. Mass Spectrom. Ion Processes 153, 1–7 (1996)
64. B. J. Winter, T. D. Klots, E. K. Parks and S. J. Riley, Z. Phys. D: At., Mol. Clusters, 1991, 19,
381–384.
65. K. Fuke, S. Nonose, N. Kikuchi, K. Kaya, Chem. Phys. Lett. 147, 479–483 (1988)
66. L. Geng, C. Cui, Y. Jia, H. Wu, H. Zhang, B. Yin, Z.D. Sun, Z. Luo, J. Phys. Chem. A 124,
5879–5886 (2020)
67. A.N. Pestryakov, V.V. Lunin, N. Bogdanchikova, O.N. Temkin, E. Smolentseva, Fuel 110,
48–53 (2013)
68. M. Ichihashi, C.A. Corbett, T. Hanmura, J.M. Lisy, T. Kondow, J. Phys. Chem. A 109, 7872–
7880 (2005)
69. S. Keki, L. Nagy, G. Deak, M. Zsuga, L. Somogyi, A. Levai, J. Am. Soc. Mass Spectrom. 15,
879–883 (2004)
70. Y.L. Cao, X.A. Zhao, B. Xin, S.X. Xiong, Z.C. Tang, J. Mol. Struct. Theochem 683, 141–146
(2004)
71. S.H. Cai, K. Sohlberg, J. Mol. Catal. a-Chem. 193, 157–164 (2003)
72. G.M. Koretsky, M.B. Knickelbein, R. Rousseau, D. Marx, J. Phys. Chem. A 105, 11197–11203
(2001)
73. R. Rousseau, D. Marx, J. Chem. Phys. 112, 761–769 (2000)
74. A.M.L. Oiestad, E. Uggerud, Chem. Phys. 262, 169–177 (2000)
75. G. Dietrich, S. Kruckeberg, K. Lutzenkirchen, L. Schweikhard, C. Walther, J. Chem. Phys.
112, 752–760 (2000)
