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  • Cited by 167
Publisher:
Cambridge University Press
Online publication date:
February 2010
Print publication year:
2007
Online ISBN:
9780511628887

Book description

Clusters can be viewed as solids at the nano-scale, yet molecular cluster chemistry and solid state chemistry have traditionally been considered as separate topics. This treatment has made it conceptually difficult to appreciate commonalities of structure and bonding between the two. Using analogous models, this is the first book to form a connecting bridge. Although the focus is on clusters, sufficient attention is paid to solid-state compounds at each stage of the development to establish the interrelationship between the two topics. Comprehensive coverage of cluster types by composition, size and ligation, is provided, as is a synopsis of selected research. Written in an accessible style and highly illustrated to aid understanding, this book is suitable for researchers in inorganic chemistry, physical chemistry, materials science, and condensed matter physics.

Reviews

'The book is successfully targeted at advanced undergraduates and graduate students in chemistry. …the book will also be valuable to those looking for real materials with potential applications in fields such as magnetism, opto-electronics and energy storage.'

Source: Chemistry World

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Contents

References
Adams, R. D. and Captain, B. (2005). Angew. Chem. Int. Ed., 44, 2531.
Amini, M. M., Fehlner, T. P., Long, G. J. and Politowski, M. (1990). Chem. Mater., 2, 432.
Adams, R. D., Cortopassi, J. E., Aust, J. and Myrick, M. (1993). J. Am. Chem. Soc., 115, 8877.
Beauvais, L. G., Shores, M. P. and Long, J. R. (2000). J. Am. Chem. Soc., 122, 2763.
Beswick, M. A., Choi, N., Harmer, C. N., Hopkins, A. D., McPartlin, M. and Wright, D. S. (1998). Science, 281, 1500.
Bino, A., Ardon, M. and Shirman, E. (2005). Science, 308, 234.
Brynda, M., Herber, R., Hitchcock, P. B., Lappert, M. F., Nowik, I., Power, P. P., Protchenko, A. V., Růžička, A. and Steiner, J. (2006). Angew. Chem. Int. Ed., 45, 4333.
Bunz, U. H. F. (2005). Science, 308, 216.
Burdett, J. and Eisenstein, O. (1995). J. Am. Chem. Soc., 117, 11939.
Charles, S., Eichhorn, B. W. and Bott, S. G. (1993). J. Am. Chem. Soc., 115, 5837.
Cleaver, W. M., Späth, M., Hnyk, D., McMurdo, G., Power, M. B., Stuke, M., Rankin, D. W. H. and Barron, A. R. (1995). Organometallics, 14, 690.
Corbett, J. D. (1985). Chem. Rev., 85, 383.
Crawford, N. R. M., Hee, A. G. and Long, J. R. (2002). J. Am. Chem. Soc., 124, 14842.
Eichhorn, B. W., Haushalter, R. C. and Pennington, W. T. (1988). J. Am. Chem. Soc., 110, 8704.
Eichler, B. E. and Power, P. P. (2001). Angew. Chem. Int. Ed., 40, 796.
Fassler, J. F. (2001). Coord. Chem. Rev., 215, 347.
Fumagalli, A., Pergola, R. D., Bonacina, F., Garlaschelli, L., Moret, M. and Sironi, A. (1989). J. Am. Chem. Soc., 111, 165.
Gaines, D. and Schaeffer, R. (1964). Inorg. Chem., 3, 438.
Grimes, R. N. (1992). Chem. Rev., 92, 251.
Jutzi, P., Mix, A., Rummel, B., Schoeller, W. W., Neumann, B. and Stammler, H.- G. (2004). Science, 305, 849.
Kanatzidis, M. G., Salifoglou, A. and Coucouvanis, D. (1986). Inorg. Chem., 25, 2460.
Kehrwald, M., Köstler, W., Rodig, A., Linti, G., Blank, T. and Wiber, N. (2001). Organometallics, 20, 860.
Kubas, G. J. (2001). J. Organomet. Chem., 635, 37.
MacInnes, A. N., Power, M. B. and Barron, A. R. (1993). Chem. Mater., 5, 1344.
Masumori, T., Seino, H., Mizobe, Y. and Hidai, M. (2000). Inorg. Chem., 39, 5002.
Mingos, D. M. P. and Wales, D. J. (1990). J. Am. Chem. Soc., 112, 930.
Okazaki, M., Ohtani, T., Inomata, S., Tagaki, N. and Ogino, H. (1998). J. Am. Chem. Soc., 120, 9135.
Rogel, F. and Corbett, J. D. (1990). J. Am. Chem. Soc., 112, 8198.
Schmettow, W. and Schnering, H. G. v. (1977). Angew. Chem. Int. Ed., 16, 857.
Schnepf, A. and Schnöckel, H. (2002). Angew. Chem. Int. Ed., 41, 3533.
Shores, M. P., Beauvais, L. G. and Long, J. R. (1999). J. Am. Chem. Soc., 121, 775.
Sneddon, L. G., Pender, M. J., Forsthoefel, K. M., Kusari, U. and Wei, X. (2005). J. Eur. Ceram. Soc., 25, 91.
Tian, Y. and Hughbanks, T. (1995). Inorg. Chem., 34, 6250.
Ugrinov, A. and Sevov, S. C. (2002). J. Am. Chem. Soc., 124, 2442.
Ugrinov, A. and Sevov, S. C. (2003). Inorg. Chem., 42, 5789.
Xu, L. and Sevov, S. C. (1999). J. Am. Chem. Soc., 121, 9245.
Yong, L , Hoffmann, S. D., Fässler, T. F., Riedel, S. and Kaupp, M. (2005). Angew. Chem. Int. Ed., 44, 2092.
Zhou, H., Day, C. S. and Lachgar, A. (2004). Chem. Mater., 16, 4870.

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