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Energy Decomposition Analyses Reveal the Origins of Catalyst and Nucleophile Effects on Regioselectivity in Nucleopalladation of Alkenes

机译:能量分解分析揭示了烯烃的起源和亲核试剂对烯烃核蛋白缩合反应中区域选择性的影响

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摘要

Nucleopalladation is one of the most common mechanisms for Pd-catalyzed hydro- and oxidative functionalization of alkenes. Due to the electronic bias of the π-alkene-palladium complexes, nucleopalladations with terminal aliphatic alkenes typically deliver the nucleophile to the more substituted sp2 carbon to form the Markovnikov-selective products. The selective formation of the anti-Markovnikov nucleopalladation products requires the inherent electronic effects to be overridden, which is still a significant challenge for reactions with simple aliphatic alkenes. Because the interactions between the nucleophile and the alkene substrate are influenced by a complex combination of multiple types of steric and electronic effects, a thorough understanding of the interplay of these underlying interactions is needed to rationalize and predict the regioselectivity. Here, we employ an energy decomposition approach to quantitatively separate the different types of nucleophile-substrate interactions, including steric, electrostatic, orbital interactions, and dispersion effects, and to predict the impacts of each factor on regioselectivity. We demonstrate the use of this approach on the origins of catalyst-controlled anti-Markovnikov-selectivity in Hull’s Pd-catalyzed oxidative amination reactions. In addition, we evaluated the regioselectivity in a series of nucleopalladation reactions with different neutral and anionic Pd catalysts and N- and O-nucleophiles with different steric and electronic properties. Based on these computational analyses, a generalized scheme is established to identify the dominant nucleophile-substrate interaction affecting the regioselectivity of nucleopalladations with different Pd catalysts and nucleophiles.
机译:核蛋白缩合是钯催化烯烃加氢和氧化官能化的最常见机制之一。由于π-烯烃-钯配合物的电子偏压,具有末端脂族烯烃的核钯通常将亲核试剂递送到更取代的sp 2碳上以形成马尔可夫尼科夫选择性产物。抗马尔可夫尼可夫核pal合产物的选择性形成需要固有的电子效应被覆盖,这对于与简单脂族烯烃的反应仍然是一个重大挑战。由于亲核试剂和烯烃底物之间的相互作用受多种类型的空间效应和电子效应的复杂组合影响,因此需要对这些潜在相互作用的相互作用进行透彻了解,以合理化和预测区域选择性。在这里,我们采用能量分解方法来定量分离亲核-底物相互作用的不同类型,包括空间,静电,轨道相互作用和分散效应,并预测每种因素对区域选择性的影响。我们证明了这种方法在赫尔(Hull)钯(Pd)催化的氧化胺化反应中,由催化剂控制的反马氏(Markovnikov)选择性的起源。此外,我们评估了在使用不同中性和阴离子Pd催化剂以及具有不同空间和电子性质的N-和O-亲核试剂进行的一系列核palpalpalation反应中的区域选择性。基于这些计算分析,建立了一个通用方案来确定影响亲核试剂与不同Pd催化剂和亲核试剂的区域选择性的主要亲核试剂-底物相互作用。

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