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非共价相互作用在涉及平面碳正离子中间体的醇还原脱氧反应中诱导高对映选择性的作用。

Role of Noncovalent Interactions in Inducing High Enantioselectivity in an Alcohol Reductive Deoxygenation Reaction Involving a Planar Carbocationic Intermediate.

作者信息

Ghosh Supratim, Changotra Avtar, Petrone David A, Isomura Mayuko, Carreira Erick M, Sunoj Raghavan B

机构信息

Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.

Department of Chemistry and Applied Biosciences, Laboratory of Organic Chemistry, ETH Zürich, 8093 Zürich, Switzerland.

出版信息

J Am Chem Soc. 2023 Feb 8;145(5):2884-2900. doi: 10.1021/jacs.2c10975. Epub 2023 Jan 25.

Abstract

The involvement of planar carbocation intermediates is generally considered undesirable in asymmetric catalysis due to the difficulty in gaining facial control and their intrinsic stability issues. Recently, suitably designed chiral catalyst(s) have enabled a guided approach of nucleophiles to one of the prochiral faces of carbocations affording high enantiocontrol. Herein, we present the vital mechanistic insights from our comprehensive density functional theory (B3LYP-D3) study on a chiral Ir-phosphoramidite-catalyzed asymmetric reductive deoxygenation of racemic tertiary α-substituted allenylic alcohols. The catalytic transformation relies on the synergistic action of a phosphoramidite-modified Ir catalyst and Bi(OTf), first leading to the formation of an Ir-π-allenyl carbocation intermediate through a turn-over-determining S1 ionization, followed by a face-selective hydride transfer from a Hantzsch ester analogue to yield an enantioenriched product. Bi(OTf) was found to promote a significant number of ionic interactions as well as noncovalent interactions (NCIs) with the catalyst and the substrates (allenylic alcohol and Hantzsch ester), thus providing access to a lower energy route as compared to the pathways devoid of Bi(OTf). In the nucleophilic addition, the chiral induction was found to depend on the number and efficacy of such key NCIs. The curious case of reversal of enantioselectivity, when the α-substituent of the allenyl alcohol is changed from methyl to cyclopropyl, was identified to originate from a change in mechanism from an enantioconvergent pathway (α-methyl) to a dynamic kinetic asymmetric transformation (α-cyclopropyl). These molecular insights could lead to newer strategies to tame tertiary carbocations in enantioselective reactions using suitable combinations of catalysts and additives.

摘要

在不对称催化中,平面碳正离子中间体的参与通常被认为是不理想的,这是因为难以实现对映面控制以及其固有的稳定性问题。最近,经过适当设计的手性催化剂能够引导亲核试剂进攻碳正离子的一个前手性面,从而实现高对映选择性控制。在此,我们展示了基于密度泛函理论(B3LYP-D3)对一种手性铱-亚磷酰胺催化的外消旋叔α-取代联烯醇不对称还原脱氧反应进行全面研究后获得的重要机理见解。催化转化依赖于亚磷酰胺修饰的铱催化剂与三氟甲磺酸铋(Bi(OTf))的协同作用,首先通过一个决定反应速率的S1离子化过程形成一个铱-π-烯丙基碳正离子中间体,随后发生从汉斯酯类似物的对映选择性氢转移,生成对映体富集的产物。研究发现,Bi(OTf)能促进与催化剂以及底物(联烯醇和汉斯酯)之间大量的离子相互作用以及非共价相互作用(NCI),因此与没有Bi(OTf)的反应途径相比,提供了一条能量更低的反应路径。在亲核加成反应中,发现手性诱导取决于这些关键NCI的数量和效果。当联烯醇的α-取代基从甲基变为环丙基时,对映选择性发生反转这一奇特情况被确定是由于反应机理从对映汇聚途径(α-甲基)转变为动态动力学不对称转化(α-环丙基)所致。这些分子层面的见解可能会带来新的策略,利用合适的催化剂和添加剂组合,在对映选择性反应中控制叔碳正离子。

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