Department of Chemistry, Merkert Chemistry Center, Boston College , Chestnut Hill, Massachusetts 02467, United States.
J Am Chem Soc. 2014 Mar 5;136(9):3439-55. doi: 10.1021/ja410606b. Epub 2014 Feb 17.
Investigations detailed herein provide insight regarding the mechanism of stereochemical inversion of stereogenic-at-Ru carbene complexes through a nonolefin metathesis-based polytopal rearrangement pathway. Computational analyses (DFT) reveal that there are two key factors that generate sufficient energy barriers that are responsible for the possibility of isolation and characterization of high-energy, but kinetically stable, intermediates: (1) donor-donor interactions that involve the anionic ligands and the strongly electron donating carbene groups and (2) dipolar effects arising from the syn relationship between the anionic groups (iodide and phenoxide). We demonstrate that a Brønsted acid lowers barriers to facilitate isomerization, and that the positive influence of a proton source is the result of its ability to diminish the repulsive electronic interactions originating from the anionic ligands. The implications of the present studies regarding a more sophisticated knowledge of the role of anionic units on the efficiency of Ru-catalyzed olefin metathesis reactions are discussed. The electronic basis for the increased facility with which allylic alcohols participate in olefin metathesis processes will be presented as well. Finally, we illustrate how a better understanding of the role of anionic ligands has served as the basis for successful design of Ru-based Z-selective catalysts for alkene metathesis.
本文详细的研究结果为通过非烯烃复分解基多面重排途径研究手性-at-Ru 卡宾络合物的立体化学反转机制提供了深入的见解。计算分析(DFT)表明,有两个关键因素产生了足够的能量障碍,这是分离和表征高能但动力学稳定的中间体的可能性的原因:(1)涉及阴离子配体和强电子给体卡宾基团的供体-供体相互作用;(2)源于阴离子基团(碘化物和酚氧)之间顺式关系的偶极效应。我们证明,布朗斯台德酸降低了异构化的势垒,质子源的积极影响是其减小源于阴离子配体的排斥电子相互作用的能力的结果。本文对阴离子单元对 Ru 催化的烯烃复分解反应效率的作用有了更深入的了解,并讨论了其意义。还将介绍烯丙醇参与烯烃复分解过程的便利性增加的电子基础。最后,我们说明了对手性-at-Ru 卡宾络合物的立体化学反转机制的深入了解,为基于 Ru 的 Z 选择性催化剂的成功设计提供了基础。