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Olefin insertions metal-nitrogen bonds

Insertions of Olefins into Metal-Nitrogen Bonds... [Pg.385]

An alternative method of amine activation is opened via the oxidative addition of the N-H bond to an appropriate transition metal in a lower oxidation state. After formation of the /ff-aminoalkyl compound by insertion of the olefin into the transition-metal-nitrogen bond, the alkylamine can be generated by reductive elimination (Scheme 2), and with the reformed reduced transition metal complex the catalytic reaction can run again. [Pg.514]

A few final comments should be made on the insertions of substrates containing C-C multiple bonds into the bonds between a transition metal and an electronegative heteroatom. First, insertions of olefins into related thiolate and phosphide complexes are as rare as insertions into alkoxo and amido complexes. Reactions of acrylonitrile into the metal-phosphorus bonds of palladium- and platinum-phosphido complexes to give products from formal insertions have been observed, and one example is showm in Equation 9.90. However, these reactions are more likely to occur by direct attack of the phosphorus on the electrophilic carbon of acrylonitrile than by migratory insertion. Second, the insertions of alkynes into metal-oxygen or metal-nitrogen covalent bonds are rare, even though the C-C ir-bond in an alkyne is weaker than the ir-bond in an alkene. [Pg.388]

In parallel with the directed hydroarylation of olefins, a series of papers described the formation of ketones from heteroarenes, carbon monoxide, and an alkene. Moore first reported the reaction of CO and ethylene with pyridine at the position a to nitrogen to form a ketone (Equation 18.28). Related reactions at the less-hindered C-H bond in the 4-position of an A/-benzyl imidazole were also reported (Equation 18.29). - Reaction of CO and ethylene to form a ketone at the ortho C-H bond of a 2-arylpyridine or an N-Bu aromatic aldimine has also been reported (Equations 18.30 and 18.31). Reaction at an sp C-H bond of an N-2-pyridylpiperazine results in both alkylative carbonylation and dehydrogenation of the piperazine to form an a,p-unsaturated ketone (Equation 18.32). The proposed mechanism of the alkylative carbonylation reaction is shown in Scheme 18.6. This process is believed to occur by oxidative addition of the C-H bond, insertion of CO into the metal-heteroaryl linkage, insertion of olefin into the metal-acyl bond, and reductive elimination to form the new C-H bond in the product. [Pg.837]

Initial coordination to the nitrogen of the heterocycle guides insertion into the alkenyl C-H bond to form the transition metal hydride. Insertion into the pendant olefin gives the metallobicycle, which reductively ehminates to regenerate the catalytic species and form the cycloalkane. [Pg.20]


See other pages where Olefin insertions metal-nitrogen bonds is mentioned: [Pg.285]    [Pg.386]    [Pg.733]    [Pg.180]    [Pg.776]    [Pg.146]    [Pg.156]    [Pg.3]    [Pg.3909]    [Pg.175]    [Pg.224]    [Pg.3908]    [Pg.177]    [Pg.380]    [Pg.795]    [Pg.530]    [Pg.261]    [Pg.482]   
See also in sourсe #XX -- [ Pg.385 , Pg.386 , Pg.387 ]




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