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C(sp) - H 氧化反应中的烷氧基钯(II)物种:反应机理的最新进展

C(sp)-H oxygenation alkoxypalladium(ii) species: an update for the mechanism.

作者信息

Zhang Shuaizhong, Zhang Jinquan, Zou Hongbin

机构信息

College of Pharmaceutical Sciences, Zhejiang University Hangzhou Zhejiang 310058 P. R. China

出版信息

Chem Sci. 2022 Jan 13;13(5):1298-1306. doi: 10.1039/d1sc06907a. eCollection 2022 Feb 2.

Abstract

Pd-catalyzed C(sp)-H oxygenation has emerged as an attractive strategy for organic synthesis. The most commonly proposed mechanism involves C(sp)-H activation followed by oxidative addition of an oxygen electrophile to give an alkylpalladium(iv) species and further C(sp)-O reductive elimination. In the present study of γ-C(sp)-H acyloxylation of amine derivatives, we show a different mechanism when -butyl hydroperoxide (TBHP) is used as an oxidant-namely, a bimetallic oxidative addition-oxo-insertion process. This catalytic model results in an alkoxypalladium(ii) intermediate from which acyloxylation and alkoxylation products are formed. Experimental and computational studies, including isolation of the putative post-oxo-insertion alkoxypalladium(ii) intermediates, support this mechanistic model. Density functional theory reveals that the classical alkylpalladium(iv) oxidative addition pathway is higher in energy than the bimetallic oxo-insertion pathway. Further kinetic studies revealed second-order dependence on [Pd] and first-order on [TBHP], which is consistent with DFT analysis. This procedure is compatible with a wide range of acids and alcohols for γ-C(sp)-H oxygenation. Preliminary functional group transformations of the products underscore the great potential of this protocol for structural manipulation.

摘要

钯催化的C(sp)-H氧化反应已成为有机合成中一种具有吸引力的策略。最常提出的机理包括C(sp)-H活化,随后氧亲电试剂进行氧化加成,生成烷基钯(IV)物种,进而发生C(sp)-O还原消除。在本项关于胺衍生物γ-C(sp)-H酰氧基化的研究中,我们发现当使用叔丁基过氧化氢(TBHP)作为氧化剂时,反应机理有所不同——即双金属氧化加成-氧插入过程。这种催化模式会生成一种烷氧基钯(II)中间体,由此形成酰氧基化产物和烷氧基化产物。包括分离假定的氧插入后烷氧基钯(II)中间体在内的实验和计算研究均支持这一机理模型。密度泛函理论表明,经典的烷基钯(IV)氧化加成途径的能量高于双金属氧插入途径。进一步的动力学研究表明,反应对[Pd]呈二级依赖,对[TBHP]呈一级依赖,这与密度泛函理论分析结果一致。该方法适用于多种酸和醇进行γ-C(sp)-H氧化反应。产物的初步官能团转化突出了该方法在结构操纵方面的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/660b/8809414/5264714b43f1/d1sc06907a-s2.jpg

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