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Catalytic Efficiency Is a Function of How Rhodium(I) (5 + 2) Catalysts Accommodate a Conserved Substrate Transition State Geometry: Induced Fit Model for Explaining Transition Metal Catalysis

机译:催化效率是铑(I)(5 + 2)催化剂如何适应保守的基质过渡态几何的函数:解释过渡金属催化的诱导拟合模型

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摘要

The origins of differential catalytic reactivities of four Rh(I) catalysts and their derivatives in the (5 + 2) cycloaddition reaction were elucidated using density functional theory. Computed free energy spans are in excellent agreement with known experimental rates. For every catalyst, the substrate geometries in the transition state remained constant (<0.1 Å RMSD for atoms involved in bond-making and -breaking processes). Catalytic efficiency is shown to be a function of how well the catalyst accommodates the substrate transition state geometry and electronics. This shows that the induced fit model for explaining biological catalysis may be relevant to transition metal catalysis. This could serve as a general model for understanding the origins of efficiencies of catalytic reactions.
机译:使用密度泛函理论阐明了四种Rh(I)催化剂及其衍生物在(5 + 2)环加成反应中差异催化反应性的起源。计算出的自由能跨度与已知的实验速率非常吻合。对于每种催化剂,在过渡态的底物几何形状保持恒定(对于参与键形成和断裂过程的原子,<0.1ÅRMSD)。已显示催化效率是催化剂适应基材过渡态几何形状和电子学性能的函数。这表明用于解释生物催化的诱导拟合模型可能与过渡金属催化有关。这可以用作理解催化反应效率起源的通用模型。

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