Bimetallic Fe–Cu Carbido Carbonyl Clusters Obtained from the Reactions of [Fe4C(CO)12{Cu(MeCN)}2] with N-Donor Ligands
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  • 作者:Iacopo Ciabatti ; Cristina Femoni ; Mohammad Hayatifar…
  • 关键词:Heterometallic clusters ; Carbonyl ; Copper ; Iron ; Interstitial carbide
  • 刊名:Journal of Cluster Science
  • 出版年:2016
  • 出版时间:March 2016
  • 年:2016
  • 卷:27
  • 期:2
  • 页码:431-456
  • 全文大小:1,229 KB
  • 参考文献:1.C. Femoni, R. Della Pergola, M. C. Iapalucci, F. Kaswalder, M. Riccò, and S. Zacchini (2009). Dalton Trans. 9, 1509.CrossRef
    2.R. Della Pergola, A. Sironi, L. Garlaschelli, D. Strumolo, C. Manassero, M. Manassero, S. Fedi, P. Zanello, F. Kaswalder, and Stefano Zacchini (2010). Inorg. Chim. Acta 363, 586.CrossRef
    3.R. Della Pergola, A. Sironi, C. Manassero, and M. Manassero (2010). Organometallics 29, 5885.CrossRef
    4.R. Della Pergola, M. Bruschi, A. Sironi, M. Manassero, C. Manassero, D. Strumolo, S. Fedi, and P. Zanello (2011). Dalton Trans. 40, 5464.CrossRef
    5.R. DellaPergola, A. Sironi, M. Moret, S. Bregantin, P. R. Mussini, and M. Panigati (2013). J. Organomet. Chem. 728, 23.CrossRef
    6.R. Della Pergola, A. Sironi, A. Roseher, V. Colombo, and A. Sironi (2014). Inorg. Chem. Commun. 49, 27.CrossRef
    7.E. E. Chufán, S. C. Puiu, and K. D. Karlin (2007). Acc. Chem. Res. 40, 563.CrossRef
    8.B. Wu, L. Tian, H. Xiang, Z. Zhang, and Y.-W. Li (2005). Catal. Lett. 102, 211.CrossRef
    9.P. Braunstein, G. Clerc, and X. Morise (2003). New J. Chem. 27, 68.CrossRef
    10.L. Spiccia, K. S. Murray, J. F. Young, and T. Mallah (2004). Inorg. Synth. 34, 133.
    11.M. Tachikawa and E. L. Muetterties (1980). J. Am. Chem. Soc. 102, 4541.CrossRef
    12.E. M. Holt, K. H. Withmire, and D. F. Shriver (1981). J. Organomet. Chem 213, 125.CrossRef
    13.S. Stagni, A. Palazzi, S. Zacchini, B. Ballarin, C. Bruno, M. Marcaccio, F. Paolucci, M. Monari, M. Carano, and A. J. Bard (2006). Inorg. Chem. 45, 695.CrossRef
    14.R. Della Pergola, A. Sironi, C. Manassero, and M. Manassero (2010). Organometallics 29, 5885.CrossRef
    15.P. F. Jackson, B. F. G. Johnson, J. Lewis, J. N. Nicholls, M. McPartlin, and W. J. H. Nelson (1980). J. Chem. Soc. Chem. Commun. 564.
    16.B. F. G. Johnson, J. Lewis, J. N. Nicholls, J. Puga, P. R. Raithby, M. J. Rosales, M. McPartlin, and W. Clegg (1983). J. Chem. Soc. Dalton Trans. 277.
    17.K. Wade (1976). Adv. Inorg. Chem. Radiochem. 18, 1.
    18.M. Bortoluzzi, I. Ciabatti, C. Femoni, T. Funaioli, M. Hayatifar, M. C. Iapalucci, G. Longoni, and S. Zacchini (2014). Dalton Trans. 43, 9633.CrossRef
    19.I. Ciabatti, C. Femoni, M. Hayatifar, M. C. Iapalucci, and S. Zacchini (2015). Inorg. Chim. Acta 428, 203.CrossRef
    20.S. Saha, L. Zhu, and B. Captain (2010). Inorg. Chem. 49, 3465.CrossRef
    21.R. D. Adams, B. Captain, W. Fu, P. J. Pellecchia, and M. D. Smith (2003). Inorg. Chem. 42, 2094.CrossRef
    22.D. S. Shephard, B. F. G. Johnson, A. Harrison, S. Parsons, S. P. Smidt, L. J. Yellowlees, and D. Reed (1998). J. Organomet. Chem. 563, 113.CrossRef
    23.R. D. Adams, B. Captain, P. J. Pellecchia, and L. Zhu (2004). Inorg. Chem. 43, 7243.CrossRef
    24.R. D. Adams, J. Tedder, and Y. O. Wong (2015). J. Organomet. Chem. 795, 2.CrossRef
    25.R. Reina, O. Riba, O. Rossell, M. Seco, P. Gomez-Sal, A. Martin, D. de Montauzon, and A. Mari (1998). Organometallics 17, 4127.CrossRef
    26.R. D. Adams, B. Captain, W. Fu, P. J. Pellecchia, and M. D. Smidt (2002). Angew. Chem. Int. Ed. 41, 1951.CrossRef
    27.D. J. Darensbourg, E. M. Longridge, E. V. Atnip, and J. H. Reibenspies (1992). Inorg. Chem. 31, 3951.CrossRef
    28.Z. Huang and J. F. Hartwig (2012). Angew. Chem. Int. Ed. 51, 1028.CrossRef
    29.P. C. Healy, L. M. Engelhardt, V. A. Patrick, and A. H. White (1985). J. Chem. Soc. Dalton Trans. 12, 2541.CrossRef
    30.C. Dey and R. Banerjee (2013). ChemPhysChem 14, 1009.CrossRef
    31.S. K. Hoffmann, P. J. Corvan, P. Singh, C. N. Sethulekshmi, R. M. Metzger, and W. E. Hatfield (1983). J. Am. Chem. Soc. 105, 4608.CrossRef
    32.K. Latham, K. F. White, K. B. Szpakolski, C. J. Rix, and J. M. White (2009). Inorg. Chim. Acta 362, 1872.CrossRef
    33.J. W. Tye, Z. Weng, R. Giri, and J. F. Hartwig (2010). Angew. Chem. Int. Ed. 49, 2185.CrossRef
    34.S.-L. Zheng, M. Gembicky, M. Messerschmidt, P. M. Dominiak, and P. Coppens (2006). Inorg. Chem. 45, 9281.CrossRef
    35.R. D. Adams, R. Layland, and K. McBride (1996). Organometallics 15, 5425.CrossRef
    36.B. F. G. Johnson, D. A. Kaner, J. Lewis, P. R. Raithby, and M. J. Rosales (1982). J. Organomet. Chem. 231, C59.CrossRef
    37.J. A. Hrijac, P. N. Swepston, and D. F. Shriver (1985). Organometallics 4, 158.CrossRef
    38.M. Tachikawa, A. C. Sievert, E. L. Muetterties, M. R. Thompson, C. S. Day, and V. W. Day (1980). J. Am. Chem. Soc. 102, 1725.CrossRef
    39.S. Saha, L. Zhu, and B. Captain (2010). Inorg. Chem. 49, 3465.CrossRef
    40.R. Reina, O. Riba, O. Rossell, M. Seco, P. Gomez-Sal, and A. Martin (1997). Organometallics 16, 5113.CrossRef
    41.O. Rossell, M. Seco, G. Segales, S. Alvarez, M. A. Pellinghelli, A. Tiripicchio, and D. de Montauzon (1997). Organometallics 16, 236.CrossRef
    42.R. D. Adams, B. Captain, and W. Fu (2001). J. Clust. Sci. 12, 303.CrossRef
    43.J. Camats, R. Reina, O. Riba, O. Rossell, M. Seco, P. Gomez-Sal, A. Martin, and D. de Montauzon (2000). Organometallics 19, 3316.CrossRef
    44.O. Rossell, M. Seco, G. Segales, B. F. G. Johnson, P. J. Dyson, and S. L. Ingham (1996). Organometallics 15, 884.CrossRef
    45.E. Keller SCHAKAL99 (University of Freiburg, Germany, 1999).
    46.G. M. Sheldrick SADABS, Program for Empirical Absorption Correction (University of Göttingen, Göttingen, 1996).
    47.G. M. Sheldrick SHELX97, Program for Crystal Structure Determination (University of Göttingen, Göttingen, 1997).
  • 作者单位:Iacopo Ciabatti (1)
    Cristina Femoni (1)
    Mohammad Hayatifar (1)
    Maria Carmela Iapalucci (1)
    Irene Maggiore (1)
    Stefano Stagni (1)
    Stefano Zacchini (1)

    1. Dipartimento di Chimica Industriale “Toso Montanari”, Università di Bologna, Viale Risorgimento 4, 40136, Bologna, Italy
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Catalysis
    Inorganic Chemistry
    Physical Chemistry
  • 出版者:Springer Netherlands
  • ISSN:1572-8862
文摘
The reaction of [Fe4C(CO)12{Cu(MeCN)}2] (1) with 3 equivalents of L–L (phen or Me2phen) affords [Cu(L–L)2][Fe4C(CO)12{Cu(L–L)}] (L–L = phen, 2; Me2phen, 3) in good yields. These are protonated by strong acids resulting in [HFe4C(CO)12{Cu(L–L)}] (L–L = phen, 4; Me2phen, 5). The reaction may be reversed with bases, resulting in the quaternary ammonium salts [NR4][Fe4C(CO)12{Cu(phen)}] (6). 4 and 5 react with a slight excess of L–L resulting in the elimination of copper in the form of [Cu(L–L)2]+ and formation of the previously reported [HFe4C(CO)12]− homometallic cluster. Conversely, the reaction of 1 with a monodentate N-ligand such as quinoline, even if used in large excess, results in the substitution product [Fe4C(CO)12{Cu(quinoline)}2] (8), which is then transformed into [Cu(Me2phen)2] [Fe4C(CO)12{Cu(quinoline)}] (9) after reaction with Me2phen. By using the anionic cluster [Fe5C(CO)14{Cu(MeCN)}]− instead of the neutral 1, only substitution has been observed by using both phen and quinoline, resulting in [Fe5C(CO)14{Cu(phen)}]− (10) and [Fe5C(CO)14{Cu(quinoline)}]− (11), respectively. Finally, the reaction of 1 with [Ru(tpy)(bpy)(N4C-C6H4-CN)]Cl affords crystals of [Fe4C(CO)12Cu2Cl{Ru(tpy)(bpy)(N4C-C6H4-CN)}] (12). All compounds 2-12 have been characterized by a combination of spectroscopic (IR, NMR) and crystallographic methods. All these clusters may be viewed as composed by a butterfly [Fe4C(CO)12]2− core bonded to Cu(I) fragments and/or H+ ions.

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