Literature DB >> 25915086

Mechanistic Insight into Ketone α-Alkylation with Unactivated Olefins via C-H Activation Promoted by Metal-Organic Cooperative Catalysis (MOCC): Enriching the MOCC Chemistry.

Yanfeng Dang1, Shuanglin Qu1, Yuan Tao1, Xi Deng1, Zhi-Xiang Wang1,2.   

Abstract

Metal-organic cooperative catalysis (MOCC) has been successfully applied for hydroacylation of olefins with aldehydes via directed C(sp(2))-H functionalization. Most recently, it was reported that an elaborated MOCC system, containing Rh(I) catalyst and 7-azaindoline (L1) cocatalyst, could even catalyze ketone α-alkylation with unactivated olefins via C(sp(3))-H activation. Herein we present a density functional theory study to understand the mechanism of the challenging ketone α-alkylation. The transformation uses IMesRh(I)Cl(L1)(CH2═CH2) as an active catalyst and proceeds via sequential seven steps, including ketone condensation with L1, giving enamine 1b; 1b coordination to Rh(I) active catalyst, generating Rh(I)-1b intermediate; C(sp(2))-H oxidative addition, leading to a Rh(III)-H hydride; olefin migratory insertion into Rh(III)-H bond; reductive elimination, generating Rh(I)-1c(alkylated 1b) intermediate; decoordination of 1c, liberating 1c and regenerating Rh(I) active catalyst; and hydrolysis of 1c, furnishing the final α-alkylation product 1d and regenerating L1. Among the seven steps, reductive elimination is the rate-determining step. The C-H bond preactivation via agostic interaction is crucial for the bond activation. The mechanism rationalizes the experimental puzzles: why only L1 among several candidates performed perfectly, whereas others failed, and why Wilkinson's catalyst commonly used in MOCC systems performed poorly. Based on the established mechanism and stimulated by other relevant experimental reactions, we attempted to enrich MOCC chemistry computationally, exemplifying how to develop new organic catalysts and proposing L7 to be an alternative for L1 and demonstrating the great potential of expanding the hitherto exclusive use of Rh(I)/Rh(III) manifold to Co(0)/Co(II) redox cycling in developing MOCC systems.

Entities:  

Year:  2015        PMID: 25915086     DOI: 10.1021/jacs.5b01502

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Branched-Selective Direct α-Alkylation of Cyclic Ketones with Simple Alkenes.

Authors:  Dong Xing; Xiaotian Qi; Daniel Marchant; Peng Liu; Guangbin Dong
Journal:  Angew Chem Int Ed Engl       Date:  2019-02-21       Impact factor: 15.336

Review 2.  N-Heterocyclic Carbene Complexes in C-H Activation Reactions.

Authors:  Qun Zhao; Guangrong Meng; Steven P Nolan; Michal Szostak
Journal:  Chem Rev       Date:  2020-01-22       Impact factor: 60.622

3.  Stabilization of Two Radicals with One Metal: A Stepwise Coupling Model for Copper-Catalyzed Radical-Radical Cross-Coupling.

Authors:  Xiaotian Qi; Lei Zhu; Ruopeng Bai; Yu Lan
Journal:  Sci Rep       Date:  2017-03-08       Impact factor: 4.379

4.  Differences between the elimination of early and late transition metals: DFT mechanistic insights into the titanium-catalyzed synthesis of pyrroles from alkynes and diazenes.

Authors:  Jiandong Guo; Xi Deng; Chunyu Song; Yu Lu; Shuanglin Qu; Yanfeng Dang; Zhi-Xiang Wang
Journal:  Chem Sci       Date:  2016-12-22       Impact factor: 9.825

5.  Mechanistic insights into cobalt(ii/iii)-catalyzed C-H oxidation: a combined theoretical and experimental study.

Authors:  Xiao-Kang Guo; Lin-Bao Zhang; Donghui Wei; Jun-Long Niu
Journal:  Chem Sci       Date:  2015-09-09       Impact factor: 9.825

  5 in total

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