1 Theoretical Chemistry for Advanced Nanomaterials: Computational. . .
23
38. T. Onishi, Int. J. Quantum Chem. 109, 3659–3636 (2009)
39. T. Onishi, Quantum Computational Chemistry – Modelling and Calculation for Functional
Material (Springer Nature, Singapore, 2018), Chapter 13
40. T. Onishi, Int. J. Quantum Chem. 110, 2912–2917 (2010)
41. T. Onishi, Adv. Quantum Chem. 70, 31–67 (2015)
42. T. Onishi, in AIP Conference Proceedings 2040: 020002, 2018
43. D.P. Broom, Hydrogen Storage Materials (Springer Nature, London, 2011), Chapter 2
44. M.B. Ley, L.H. Jepsen, Y.S. Lee, Y.W. Cho, J.M. von Colbev, M. Dornheim, M. Rokni, J.O.
Jensen, M. Sloth, Y. Filinchuk, J.E. Jørgensen, F. Besenbacher, T.R. Jensen, Mater. Today 17,
122–128 (2010)
45. T.K. Mandal, D.H. Gregory, Annu. Rep. Prog. Chem. Sect. A 105, 21–54 (2009)
46. U. Eberle, M. Felderhoff, F. Schüth, Angew. Chem. Int. Ed. 48, 6608–6630 (2009)
47. S. Orimo, Y. Nakamori, J.R. Eliseo, A. Züttel, C.M. Jensen, Chem. Rev. 107, 4111–4132
(2007)
48. P. Ravindran, P. Vajeeston, R. Vidya, H. Fjellvåg, A. Kjekshus, J. Power Sources 159, 88–99
(2006)
49. O.M. Løvvik, O. Swang, S.M. Opalka, J. Mater. Res. 20, 3199–3213 (2005)
50. L. Schlapbach, A. Züttel, Nature 414, 353–358 (2001)
51. T. Onishi, Mol. Phys. 112, 533–538 (2014)
52. J.G. Bednorz, K.A. Miiller, Z. Phys. B: Condens. Matter. 64, 189–193 (1986)
53. S. Maekawa, Oyo Buturi. 65, 334–343 (1996), (In Japanese)
54. S. Maekawa, Oyo Buturi. 75, 16–25 (2006), (In Japanese)
55. T. Onishi, Quantum Computational Chemistry – Modelling and Calculation for Functional
Material (Springer Nature, Cham, 2018), Chapter 10
56. T. Onishi, Quantum Computational Chemistry – Modelling and Calculation for Functional
Material (Springer Nature, Cham, 2018), Chapter 11
57. Y. Tokura, N. Nagaosa, Science 288, 462–468 (2000)
58. T. Mizokawa, Solid State Phys. 37, 733–743 (2002), (In Japanese)
59. G.D. Stucky, J.E. Mac Dougall, Science 247, 669–678 (1990)
60. M. Eddaoudi, D.B. Moler, H. Li, B. Chen, T.M. Reineke, M. O’Keeffe, O.M. Yaghi, Acc.
Chem. Res. 34(4), 319–330 (2001)
61. J.L.C. Rowsell, O.M. Yaghi, Angew. Chem. Int. Ed. 44, 4670–4679 (2005)
62. H.C. Zhou, J.R. Long, O.M. Yaghi, Chem. Rev. 112, 673–674 (2012)
63. H.C. Zhou, S. Kitagawa, Chem. Soc. Rev. 43, 5415–5418 (2014)
64. R.V. Noorden, D. Castelvecchi, Nature 538, 152 (2016)
65. T. Hamacher, Hydrogen and Fuel Cell – Technologies and Market Perspectives (Springer
Nature, Berlin, 2014), Chapter 1
66. U. Schmidtchen, R. Wurster, Hydrogen and Fuel Cell – Technologies and Market Perspectives
(Springer Nature, Berlin, 2014), Chapter 3
67. N. Masuda, Y. Kobayashi, O. Hernandez, T. Bataille, S. Paofai, H. Suzuki, C. Ritter, N. Ichijo,
Y. Noda, K. Takegoshi, C. Tassel, T. Yamamoto, H. Kageyama, J. Am. Chem. Soc. 137, 15315–
15321 (2015)
68. D. Lisbona, T. Snee, Process. Saf. Environ. Prot. 89, 434–442 (2011)
69. D. Aurbach, E. Zinigrad, Y. Cohen, H. Teller, Solid State Ionics 148, 405–416 (2002)
70. H. Honbo, K. Takei, Y. Ishii, T. Nishida, J. Power Sources 189, 337–343 (2009)
71. C. Xia, C.Y. Kwok, L.F. Nazar, Science 361, 777–781 (2018)
72. T. Oshima, M. Kajita, A. Okuno, Int. J. Appl. Ceram. Technol. 1, 269–276 (2004)
73. R. Okuyama, H. Nakashima, T. Sano, E. Nomura, J. Power Sources 93, 50–54 (2001)
74. P. Saha, M.K. Datta, O.I. Velikokhatnyi, A. Manivannan, D. Alman, P.N. Kumta, Prog. Mater.
Sci. 66, 1–86 (2014)
75. D. Aurbach, Z. Lu, A. Schechter, Y. Gofer, H. Gizbar, R. Turgeman, Y. Cohen, M. Moshkovich,
E. Levi, Nature 407, 724–727 (2000)
76. A. Ponrouch, C. Frontera, F. Bardé, M.R. Palacín, Nat. Mater. 15, 169–172 (2016)
77. A. Ponrouch, M.R. Palacín, Curr. Opin. Electrochem. 9, 1–7 (2018)
78. R.J. Gummow, G. Vamvounis, M.B. Bobby Kannan, Y. He, Adv. Mater. 30, 1801702 (2018)
Précédent

- 38/547

Suivant