氢酰化
苯甲醛
还原消去
化学
脱碳
密度泛函理论
氧化加成
分子间力
催化作用
药物化学
光化学
计算化学
醛
有机化学
分子
标识
DOI:10.1002/slct.201902097
摘要
Abstract Density functional theory (DFT) was employed to study and expound Co(I)‐catalyzed intermolecular hydroacylation of benzaldehydes. The ωB97XD/6‐31G(d,p) level (LANL2DZ(f) for I and Co) was applied to optimize all intermediates and transition states. The computational results revealed that Co(I)‐catalyzed hydroacylation went primarily through the oxidative addition, hydrogen migration, and reductive elimination, the rate‐limiting step was the reductive elimination, and the ester was dominating product. The complexation of benzaldehyde occurred prior to its oxidative addition in the active three‐coordinated cobalt‐diphosphine‐benzaldehyde intermediate. The decarbonylation would be prohibited as a result of high relative Gibbs free energies. Moreover, the role of iodide ion, the additive i Pr 2 NEt, and the solvent toluene were studied in detail.
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