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钌(IV)催化邻烯丙基底物的 C=C 键异构化:理论与实验研究。

Ruthenium(IV)-catalyzed isomerization of the C=C bond of o-allylic substrates: a theoretical and experimental study.

机构信息

Laboratorio de Química Computacional, Departamento de Química Física y Analítica, Universidad de Oviedo, Spain.

出版信息

Chemistry. 2011 Sep 12;17(38):10583-99. doi: 10.1002/chem.201101131. Epub 2011 Aug 17.

Abstract

A general mechanism to rationalize Ru(IV) -catalyzed isomerization of the C=C bond in O-allylic substrates is proposed. Calculations supporting the proposed mechanism were performed at the MPWB1K/6-311+G(d,p)+SDD level of theory. All experimental observations in different solvents (water and THF) and under different pH conditions (neutral and basic) can be interpreted in terms of the new mechanism. Theoretical analysis of the transformation from precatalyst to catalyst led to structural identification of the active species in different media. The experimentally observed induction period is related to the magnitudes of the energy barriers computed for that process. The theoretical energy profile for the catalytic cycle requires application of relatively high temperatures, as is experimentally observed. Participation of a water molecule in the reaction coordinate is mechanistically essential when the reaction is carried out in aqueous medium. The new mechanistic proposal helped to develop a new experimental procedure for isomerization of allyl ethers to 1-propenyl ethers under neutral aqueous conditions. This process is an unique example of efficient and selective catalytic isomerization of allyl ethers in aqueous medium.

摘要

提出了一种合理化 Ru(IV)催化 O-烯丙基底物中 C=C 键异构化的通用机制。在 MPWB1K/6-311+G(d,p)+SDD 理论水平上进行了支持所提出机制的计算。可以根据新机制解释不同溶剂(水和 THF)和不同 pH 值条件(中性和碱性)下的所有实验观察结果。从前催化剂到催化剂的转化的理论分析导致了不同介质中活性物种的结构鉴定。实验观察到的诱导期与该过程计算的能量势垒幅度有关。理论催化循环的能量态势需要应用相对较高的温度,这与实验观察结果一致。当反应在水介质中进行时,水分子参与反应坐标在机理上是必不可少的。新的机理建议有助于开发在中性水条件下将烯丙基醚异构化为 1-丙烯基醚的新实验程序。该过程是在水介质中有效和选择性催化烯丙基醚异构化的独特实例。

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