Hong X, Holte D, Götz DCG, Baran PS, Houk KN. Mechanism, reactivity, and selectivity of nickel-catalyzed [4 + 4 + 2] cycloadditions of dienes and alkynes.
J Org Chem 2014;
79:12177-84. [PMID:
25325891 PMCID:
PMC4275152 DOI:
10.1021/jo502219d]
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Abstract
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Density
functional theory (DFT) calculations with B3LYP and M06
functionals elucidated the reactivities of alkynes and Z/E selectivity of cyclodecatriene products in the
Ni-catalyzed [4 + 4 + 2] cycloadditions of dienes and alkynes. The
Ni-mediated oxidative cyclization of butadienes determines the Z/E selectivity. Only the oxidative cyclization
of one s-cis to one s-trans butadiene
is facile and exergonic, leading to the observed 1Z,4Z,8E-cyclodecatriene product.
The same step with two s-cis or s-trans butadienes is either kinetically or thermodynamically unfavorable,
and the 1Z,4E,8E- and 1Z,4Z,8Z-cyclodecatriene isomers are not observed in experiments. In addition,
the competition between the desired cooligomerization and [2 + 2 +
2] cycloadditions of alkynes depends on the coordination of alkynes.
With either electron-deficient alkynes or alkynes with free hydroxyl
groups, the coordination of alkynes is stronger than that of dienes,
and alkyne trimerization prevails. With alkyl-substituted alkynes,
the generation of alkyne-coordinated nickel complex is much less favorable,
and the [4 + 4 + 2] cycloaddition occurs.
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