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The Mechanism of Iron(II)-Catalyzed Asymmetric Mukaiyama Aldol Reaction in Aqueous Media: Density Functional Theory and Artificial Force-Induced Reaction Study.

机译:铁(II)在水性介质中催化不对称向海山羟醛反应的机理:密度泛函理论和人工力诱导反应研究。

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摘要

Density functional theory (DFT), combined with the artificial force-induced reaction (AFIR) method, is used to establish the mechanism of the aqueous Mukaiyama aldol reactions catalyzed by a chiral Fe(II) complex. On the bases of the calculations, we identified several thermodynamically stable six- or seven-coordinate complexes in the solution, where the high-spin quintet state is the ground state. Among them, the active intermediates for the selectivity-determining outer-sphere carbon-carbon bond formation are proposed. The multicomponent artificial force-induced reaction (MC-AFIR) method found key transition states for the carbon-carbon bond formation, and explained the enantioselectivity and diastereoselectivity. The overall mechanism consists of the coordination of the aldehyde, carbon-carbon bond formation, the rate-determining proton transfer from water to aldehyde, and dissociation of trimethylsilyl group. The calculated full catalytic cycle is consistent with the experiments. This study provides important mechanistic insights for the transition metal catalyzed Mukaiyama aldol reaction in aqueous media.
机译:密度泛函理论(DFT)结合人工诱导反应(AFIR)方法,用于建立手性Fe(II)配合物催化的水性Mukaiyama羟醛反应的机理。在计算的基础上,我们确定了溶液中几个热力学稳定的六坐标或七坐标复合物,其中高旋转五重态为基态。其中,提出了用于确定选择性的外球碳-碳键形成的活性中间体。多组分人工力诱导反应(MC-AFIR)方法发现了碳-碳键形成的关键过渡态,并解释了对映选择性和非对映选择性。总体机理包括醛的配位,碳-碳键的形成,决定质子从水到醛的转移速率以及三甲基甲硅烷基的离解。计算出的完整催化循环与实验一致。该研究为过渡金属在含水介质中催化Mukaiyama aldol反应提供了重要的机理见解。

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