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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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Tetrahedron
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9
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0000485131
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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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Felkin, H.1
Knowles, P.J.2
Meunier, B.3
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10
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37049104952
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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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Davies, S.G.1
Green, M.L.H.2
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84918251095
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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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Jonas, K.1
Koepe, G.2
Krüger, C.3
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0022790583
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However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples
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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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13
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24544446979
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nMMgCl], for which X-ray diffraction studies suggest a direct M-Mg bond. For example see a) H. Felkin, G. Swierczewski, Tetrahedron 1975, 31, 2735; b) H. Felkin, P. J. Knowles, B. Meunier, J. Organomet. Chem. 1978, 146, 151; S. G. Davies, M. L. H. Green, J. Chem, Soc. Dalton Trans. 1978, 1510; K. Jonas, G. Koepe, C. Krüger, Angew. Chem. 1986, 95, 901; Angew. Chem. Int. Ed. Engl. 1986, 25, 923. However, many bimetallic transition metal/magnesium complexes containing carbonyl ligands exhibit bridging M(μ-CO)Mg units rather than direct M-Mg interactions; examples: e) G. B. Vicker, Inorg. Chem. 1975, 14, 2087;
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Vicker, G.B.1
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f) S. W. Ulmer, P. M. Skarstad, J. M. Burlitch, R. E. Hughes, J. Am. Chem. Soc. 1973, 95, 4469; g) J. L. Detrich, R. Konečný, W. M. Vetter, D. Doren, A. L. Rheingold, K. H. Theopold, ibid. 1996, 118, 1703. Therefore, we prefer the wider use of inorganic Grignard reagents which implies analogy to organic Grignard reagents in terms of composition, synthesis, and reactivity.
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f) S. W. Ulmer, P. M. Skarstad, J. M. Burlitch, R. E. Hughes, J. Am. Chem. Soc. 1973, 95, 4469; g) J. L. Detrich, R. Konečný, W. M. Vetter, D. Doren, A. L. Rheingold, K. H. Theopold, ibid. 1996, 118, 1703. Therefore, we prefer the wider use of inorganic Grignard reagents which implies analogy to organic Grignard reagents in terms of composition, synthesis, and reactivity.
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Rheingold, A.L.5
Theopold, K.H.6
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16
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0001413875
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For ligand-free inorganic Grignard reagents, see a) L. E. Aleandri, B. Bogdanović, P. Bons, C. Dürr, A. Gaidies, T. Hartwig, S. Huckett, M. Lagarden, U. Wilczok, R. A. Brand, Chem. Mater. 1995, 7, 1153; b) L. E. Aleandri, B. Bogdanović, C. Dürr, D. J. Jones, J. Rozière, U. Wilczok, Adv. Mater. 1996, 8, 600.
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Huckett, S.7
Lagarden, M.8
Wilczok, U.9
Brand, R.A.10
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17
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0030196778
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For ligand-free inorganic Grignard reagents, see a) L. E. Aleandri, B. Bogdanović, P. Bons, C. Dürr, A. Gaidies, T. Hartwig, S. Huckett, M. Lagarden, U. Wilczok, R. A. Brand, Chem. Mater. 1995, 7, 1153; b) L. E. Aleandri, B. Bogdanović, C. Dürr, D. J. Jones, J. Rozière, U. Wilczok, Adv. Mater. 1996, 8, 600.
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Bogdanović, B.2
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Wilczok, U.6
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19
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84985715900
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a) E. Bartmann, B. Bogdanović, N. Janke, S. Liao, K. Schlichte, B. Spliethoff, J. Treber, U. Westeppe, U. Wilczok, Chem. Ber. 1990, 123, 1517;
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Westeppe, U.8
Wilczok, U.9
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20
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85033158126
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commercial Mg powder (250 mesh) reacts under ultrasonic irradiation, bur the reaction is sluggish and accompanied by considerable amounts of side products
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b) commercial Mg powder (250 mesh) reacts under ultrasonic irradiation, bur the reaction is sluggish and accompanied by considerable amounts of side products.
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21
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0011412036
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2, see T. Burgemeister, F. Kastner, W. Leitner, Angew. Chem. 1993, 105, 781; Angew. Chem. Int. Ed. Engl. 1993, 32, 739.
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Burgemeister, T.1
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33748238179
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2, see T. Burgemeister, F. Kastner, W. Leitner, Angew. Chem. 1993, 105, 781; Angew. Chem. Int. Ed. Engl. 1993, 32, 739.
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23
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85033135397
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note
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2 (in Mg*), respectively. Furthermore, it has been independently checked that 4a is inert towards Mg*.
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24
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0003058367
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J. Ott, L. M. Venanzi, C. A. Ghilardi, S. Midollini, A. Orlandini, J. Organomet. Chem. 1985, 291, 89.
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Orlandini, A.5
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25
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85033135181
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note
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- by ESI-MS. This, together with the tendency of the compounds to retain varying amounts of THF, has also prevented us from obtaining satisfactory elemental analyses. However, analytically determined elemental ratios of Mg:Rh:Cl:P = 1:1:1:4 are acceptable for both 1a and 1b.
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26
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85033148369
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-1, RT)
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-1, RT).
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27
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85033133794
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note
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3 function, no conclusions about its presence or absence at or below 3.5 Å was possible (FEFF calculations).
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28
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85033156766
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note
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3).
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32
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0000755479
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G. P. Mitchell, T. D. Tilley, G. P. A. Yap, A. L. Rheingold. Organometallics 1995, 14, 5472.
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Mitchell, G.P.1
Tilley, T.D.2
Yap, G.P.A.3
Rheingold, A.L.4
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34
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0037611473
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b) M. Aizenberg, R. Goikhman, D. Milstein, Organometallics 1996, 15, 1075:
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Aizenberg, M.1
Goikhman, R.2
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0001314446
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b) W. Leitner, Angew. Chem. 1995, 107, 2391; Angew. Chem. Int. Ed. Engl. 1995, 34, 2207:
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Leitner, W.1
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b) W. Leitner, Angew. Chem. 1995, 107, 2391; Angew. Chem. Int. Ed. Engl. 1995, 34, 2207:
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G. Fuchinetti, C. Floriani, P. F. Zanazzi, J. Am. Chem. Soc. 1978, 100, 7405.
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