Intermolecular activation of hydrocarbon C-H bonds under ambient conditions by 16-electron neopentylidene and benzyne complexes of molybdenum
- PMID: 12783558
- DOI: 10.1021/ja0349094
Intermolecular activation of hydrocarbon C-H bonds under ambient conditions by 16-electron neopentylidene and benzyne complexes of molybdenum
Abstract
CpMo(NO)(CH(2)CMe(3))(2) (1), a complex with alpha-agostic C-H.Mo interactions, evolves neopentane in neat hydrocarbon solutions at room temperature and forms the transient 16-electron alkylidene complex, CpMo(NO)(=CHCMe(3)), which subsequently activates solvent C-H bonds. Thus, it reacts with tetramethylsilane or mesitylene to form CpMo(NO)(CH(2)CMe(3))(CH(2)SiMe(3)) (2) or CpMo(NO)(CH(2)CMe(3))(eta(2)-CH(2)C(6)H(3)-3,5-Me(2)) (3), respectively, in nearly quantitative yields. Under identical conditions, 1 in p-xylene generates a mixture of sp(2) and sp(3) C-H bond activation products, namely CpMo(NO)(CH(2)CMe(3))(C(6)H(3)-2,5-Me(2)) (4, 73%) and CpMo(NO)(CH(2)CMe(3))(eta(2)-CH(2)C(6)H(4)-4-Me) (5, 27%). In benzene at room temperature, 1 transforms to a mixture of CpMo(NO)(CH(2)CMe(3))(C(6)H(5)) (6) and CpMo(NO)(C(6)H(5))(2) (7) in a sequential manner. Most interestingly, the thermal activation of 6 at ambient temperatures gives rise to two parallel modes of reactivity involving either the elimination of benzene and formation of CpMo(NO)(=CHCMe(3)) or the elimination of neopentane and formation of the benzyne complex, CpMo(NO)(eta(2)-C(6)H(4)). In pyridine, these intermediates are trapped as the isolable 18-electron adducts, CpMo(NO)(=CHCMe(3))(NC(5)H(5)) (8) and CpMo(NO)(eta(2)-C(6)H(4))(NC(5)H(5)) (9), and, in hydrocarbon solvents, they effect the intermolecular activation of aliphatic C-H bonds at room temperature to generate mixtures of neopentyl- and phenyl-containing derivatives. However, the distribution of products resulting from the hydrocarbon activations is dependent on the nature of the solvent, probably due to solvation effects and the presence of sigma- or pi-hydrocarbon complexes on the reaction coordinates of the alkylidene and the benzyne intermediates. The results of DFT calculations on these processes in the gas phase support the existence of such hydrocarbon complexes and indicate that better agreement with experimental observations is obtained when the actual neopentyl ligand rather than the simpler methyl ligand is used in the model complexes.
Similar articles
-
Thermal activation of hydrocarbon C-H bonds initiated by a tungsten allyl complex.J Am Chem Soc. 2003 Dec 10;125(49):15210-23. doi: 10.1021/ja037076q. J Am Chem Soc. 2003. PMID: 14653756
-
Thermal activation of hydrocarbon C-H bonds by tungsten alkylidene complexes.J Am Chem Soc. 2001 Jan 31;123(4):612-24. doi: 10.1021/ja002457e. J Am Chem Soc. 2001. PMID: 11456573
-
Intermolecular C-H bond activation reactions promoted by transient titanium alkylidynes. Synthesis, reactivity, kinetic, and theoretical studies of the Ti[triple bond]C linkage.J Am Chem Soc. 2007 Jul 18;129(28):8781-93. doi: 10.1021/ja070989q. Epub 2007 Jun 26. J Am Chem Soc. 2007. PMID: 17592842
-
Structure and reactivity of bis(silyl) dihydride complexes (PMe(3))(3)Ru(SiR(3))(2)(H)(2): model compounds and real intermediates in a dehydrogenative C-Si bond forming reaction.J Am Chem Soc. 2003 Jul 23;125(29):8936-48. doi: 10.1021/ja035916v. J Am Chem Soc. 2003. PMID: 12862491
-
Sequential Oxidation and C-H Bond Activation at a Gallium(I) Center.Angew Chem Int Ed Engl. 2019 Dec 9;58(50):18102-18107. doi: 10.1002/anie.201913028. Epub 2019 Nov 14. Angew Chem Int Ed Engl. 2019. PMID: 31643119 Review.
Cited by
-
Kinetic control and multiple mechanisms for C-H bond activation by a Zr=N complex.Angew Chem Int Ed Engl. 2007;46(29):5580-2. doi: 10.1002/anie.200701816. Angew Chem Int Ed Engl. 2007. PMID: 17577898 Free PMC article. No abstract available.
LinkOut - more resources
Full Text Sources
Research Materials
Miscellaneous