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Insertion mechanisms secondary 1-alkene insertions

The two established pathways for transition metal-catalyzed alkene isomerization are the jr-allyl metal hydride and the metal hydride addition-elimination mechanisms. The metal hydride addition-elimination mechanism is the more common pathway for transition metal-catalyzed isomerization. In this mechanism, free alkene coordinates to a metal hydride species. Subsequent insertion into the metal-hydride bond yields a metal alkyl. Formation of a secondary metal alkyl followed by y3-elimination yields isomerized alkene and regenerates the metal hydride. The jr-allylhydride mechanism is the less commonly found pathway for alkene isomerization. Oxidative addition of an activated allylic C-H bond to the metal yields a jr-allyl metal hydride. Transfer of the coordinated hydride to the opposite end of the allyl group yields isomerized alkene. [Pg.309]

Ho, S. C. H. Wu, M. M. Xiong, Y. Novel cyclopolymerization polymers from nonconjugated dienes and 1-alkenes. PCT International Patent Application WO 95/06669 (Mobil Oil Corp.), March 9,1995. Hustad, P. D. Coates, G W. Insertion/isomerization polymerization of 1,5-hexadiene synthesis of functional propylene copolymers and block copolymers. J. Am. Chem. Soc. 2062,124, 11578-11579. Hustad, P. D. Tian, J. Coates, G. W. Mechanism of propylene insertion using bis(phenoxyimine)-based titanium catalysts an unusual secondary insertion of propylene in a group IV catalyst system. J. Am. Chem. Soc. 2002,124,3614-3621. [Pg.506]

Silyl(pinacol)borane (88) also adds to terminal alkenes in the presence of a coordinate unsaturated platinum complex (Scheme 1-31) [132]. The reaction selectively provides 1,2-adducts (97) for vinylarenes, but aliphatic alkenes are accompanied by some 1,1-adducts (98). The formation of two products can be rationalized by the mechanism proceeding through the insertion of alkene into the B-Pt bond giving 99 or 100. The reductive elimination of 97 occurs very smoothly, but a fast P-hydride elimination from the secondary alkyl-platinum species (100) leads to isomerization to the terminal carbon. [Pg.29]

Possible mechanisms for chain-end stereocontrol for catalytic systems presenting primary and secondary 1-alkene (mainly propene) insertion will be described in Sections 4.1.1 and 4.1.2, respectively. [Pg.49]

Investigation on secondary kinetic isotope effects with deuterium labeling on the arene suggests a reaction mechanism in which the C-H bond cleavage is the rate-determining step. This may explain the requirement for the methyl-substituted alkene in order to arrive at a more stabilized neopentyl-like palladium intermediate M. For 2-chlorophenyl as aryl substituent, the superiority of the present pathway was demonstrated over a potential sequence of oxidative insertion,... [Pg.1278]


See other pages where Insertion mechanisms secondary 1-alkene insertions is mentioned: [Pg.34]    [Pg.126]    [Pg.679]    [Pg.974]    [Pg.71]    [Pg.703]    [Pg.2477]    [Pg.974]    [Pg.67]    [Pg.974]    [Pg.144]    [Pg.295]    [Pg.1013]    [Pg.222]   
See also in sourсe #XX -- [ Pg.51 , Pg.52 , Pg.53 ]




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