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Superatoms. Группа авторовЧитать онлайн книгу.

Superatoms - Группа авторов


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Chem. Rev. 250: 1294–1314.

      121 121 Huang, Y.‐G., Jiang, F.‐L., and Hong, M.‐C. (2009). Magnetic lanthanide−transition‐metal organic−inorganic hybrid materials: from discrete clusters to extended frameworks. Coord. Chem. Rev. 253: 2814–2834.

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      137 137 Khanna, S.N. and Jena, P. (1992). Assembling crystals from clusters. Phys. Rev. Lett. 69: 1664–1667.

      138 138 Khanna, S.N. and Jena, P. (1995). Atomic clusters: building blocks for a class of solids. Phys. Rev. B 51: 13705–13716.

      139 139 Knight, W.D., Clemenger, K., de Heer, W.A. et al. (1984). Electronic shell structure and abundances of sodium clusters. Phys. Rev. Lett. 52: 2141–2144.

      140 140 Jena, P. (2013). Beyond the periodic table of elements: the role of superatoms. J. Phys. Chem. Lett. 4: 1432.

      141 141 Leuchtner, R.E., Harms, A.C., and Castleman, A.W. Jr. (1989). Thermal metal cluster anion reactions: behavior of aluminum clusters with oxygen. J. Chem. Phys. 91: 2753.

      142 142 Li, X., Wu, H., Wang, X.B., and Wang, L.S. (1998). s−p Hybridization and electron shell structures in aluminum clusters: a photoelectron spectroscopic study. Phys. Rev. Lett. 81: 1909–1912.

      143 143 Rao, B.K. and Jena, P. (1999). Evolution of the electronic structure and properties of neutral and charged aluminum clusters: a comprehensive analysis. J. Chem. Phys. 111: 1890.

      144 144 Khanna, S.N. and Jena, P. (1994). Designing ionic solids from metallic clusters. Chem. Phys. Lett. 219: 479–483.

      145 145 Zheng, W.‐J., Thomas, O.C., Lippa, T.P. et al. (2006). The ionic KAl13 molecule: a stepping stone to cluster assembled materials. J. Chem. Phys. 124: 144304–144305.

      146 146 Gutsev, G.L. and Boldyrev, A.I. (1981). DVM‐Xα calculations on the ionization potentials of MXk+1−complex anions and the electron affinities of MXk+1 “superhalogens”. Chem. Phys. 56: 277–283.

      147 147 Jena, P. and Sun, Q. (2018). Super atomic clusters: design rules and potential for building blocks of materials. Chem. Rev. 118: 5755–5870.

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      151 151 Kumar, V. and Kawazoe, Y. (2003). Metal‐doped magic clusters of Si, Ge, and Sn: The finding of a magnetic superatom. Appl. Phys. Lett. 83: 2677.

      152 152 Rao, B.K., Jena, P., and Manninen, M. (1985). Relationship between topological and magnetic order in small metal clusters. Phys. Rev. B 32: 477.

      153 153 Nayak, S.K. and Jena, P. (1998). Anomalous magnetism of small Mn clusters. Chem. Phys. Lett. 289: 473.

       Puru Jena1, Hong Fang1, and Qiang Sun2,3

       1 Physics Department, Virginia Commonwealth University, Richmond, Virginia, USA

       2 School of Materials Science and Engineering, Peking University, Beijing, China

       3 Center for Applied Physics and Technology, Peking University, Beijing, China


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