346
T. Masubuchi and A. Nakajima
51. A. Nakajima, S. Nagao, H. Takeda, T. Kurikawa, K. Kaya, Multiple dumbbell structures of
vanadium–C 60 clusters. J. Chem. Phys. 107, 6491–6494 (1997)
52. T. Kurikawa, S. Nagao, K. Miyajima, A. Nakajima, K. Kaya, Formation of cobalt-C 60
clusters: Tricapped Co(C 60 ) 3 unit. J. Phys. Chem. A 102, 1743–1747 (1998)
53. S. Nagao, T. Kurikawa, K. Miyajima, A. Nakajima, K. Kaya, Formation and structures of
transition metal-C 60 clusters. J. Phys. Chem. A 102, 4495–4500 (1998)
54. B.P. Pozniak, R.C. Dunbar, Monomer and dimer complexes of coronene with atomic ions. J.
Am. Chem. Soc. 119, 10439–10445 (1997)
55. J.W. Buchanan, J.E. Reddic, G.A. Grieves, M.A. Duncan, Metal and multimetal complexes with polyaromatic hydrocarbons: Formation and photodissociation of Fe x -(Coronene) y
cations. J. Phys. Chem. A 102, 6390–6394 (1998)
56. J.W. Buchanan, G.A. Grieves, J.E. Reddic, M.A. Duncan, Novel mixed ligand sandwich
complexes: Competitive binding of iron with benzene, coronene, and C 60 . Int. J. Mass
Spectrom. 182–183, 323–333 (1999)
57. N.R. Foster, G.A. Grieves, J.W. Buchanan, N.D. Flynn, M.A. Duncan, Growth and photodissociation of Cr x -(Coronene) y complexes. J. Phys. Chem. A 104, 11055–11062 (2000)
58. M.A. Duncan, A.M. Knight, Y. Negishi, S. Nagao, K. Judai, A. Nakajima, K. Kaya,
Photoelectron spectroscopy of V x (Coronene) y and Ti x (Coronene) y anions. J. Phys. Chem.
A 105(44), 10093–10097 (2001)
59. M. Hirano, K. Judai, A. Nakajima, K. Kaya, Effect of ring substituents on formation rates for
vanadium-arene clusters. J. Phys. Chem. A 101, 4893–4899 (1997)
60. K. Judai, M. Hirano, H. Kawamata, S. Yabushita, A. Nakajima, K. Kaya, Formation of
vanadium-arene complex anions and their photoelectron spectroscopy. Chem. Phys. Lett. 270,
23–30 (1997)
61. K. Judai, Y. Nakamura, M. Tachibana, Y. Negishi, A. Nakajima, K. Kaya, Photoelectron
spectroscopy of scandium-arene complex anions. Chem. Lett. 30, 114–115 (2001)
62. T. Yasuike, A. Nakajima, S. Yabushita, K. Kaya, Why do vanadium atoms form multipledecker sandwich clusters with benzene molecules efficiently? J. Phys. Chem. A 101, 5360–
5367 (1997)
63. P.B. Armentrout, Electronic state-specific transition metal ion chemistry. Annu. Rev. Phys.
Chem. 41, 313–344 (1990)
64. C.E. Moore, Atomic Energy Levels (National Bureau of Standards, Washington, DC, 1949)
65. J. Hu, T.W. Odom, C.M. Lieber, Chemistry and physics in one dimension: Synthesis and
properties of nanowires and nanotubes. Acc. Chem. Res. 32, 435–445 (1999)
66. J.W. Mintmire, B.I. Dunlap, C.T. White, Are fullereue tubules metallic? Phys. Rev. Lett. 68,
631–634 (1992)
67. R. Saito, M. Fujita, G. Dresselhaus, M.S. Dresselhaus, Electronic structure of chiral graphene
tubules. Appl. Phys. Lett. 60, 2204–2206 (1992)
68. J.W.G. Wildöer, L.C. Venema, A.G. Rinzler, R.E. Smalley, C. Dekker, Electronic structure of
atomically resolved carbon nanotubes. Nature 391, 59–62 (1998)
69. D. Gatteschi, R. Sessoli, J. Villain, Molecular Nanomagnets (Oxford University Press, New
York, 2006)
70. G.S. Papaefstathiou, A. Escuer, C.P. Raptopoulou, A. Terzis, S.P. Perlepes, R. Vicente, Defective double-cubane, tetranuclear manganese (II) and cobalt (II) complexes with simultaneous
μ 1,1 -azido and μ-O bridges. Eur. J. Inorg. Chem. 6, 1567–1574 (2001)
71. C. Dendrinou-Samara, M. Alexiou, C.M. Zaleski, J.W. Kampf, M.L. Kirk, D.P. Kessissoglou,
V.L. Pecoraro, Synthesis and magnetic properties of a metallacryptate that behaves as a singlemolecule magnet. Angew. Chem. Int. Ed. 42, 3763–3766 (2003)
72. D.E. Freedman, W.H. Harman, T.D. Harris, G.J. Long, C.J. Chang, J.R. Long, Slow magnetic
relaxation in a high-spin iron(II) complex. J. Am. Chem. Soc. 132, 1224–1225 (2010)
73. F. Habib, O.R. Luca, V. Vieru, M. Shiddiq, I. Korobkov, S.I. Gorelsky, M.K. Takase, L.F.
Chibotaru, S. Hill, R.H. Crabtree, M. Murugesu, Influence of the ligand field on slow
magnetization relaxation versus spin crossover in mononuclear cobalt complexes. Angew.
Chem. Int. Ed. 52, 11290–11293 (2013)
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