Literature DB >> 17737550

Mechanisms of organic oxidation and reduction by metal complexes.

J K Kochi.   

Abstract

The mechanism of many organic oxidation and reduction reactions can be described in terms of the formation and reaction of free radicals with metal complexes. Redox (trace-metal) catalysis also involves the oxidation and reduction of radical intermediates with a metal species which oscillates between several oxidation states (4). The oxidation and reduction of free radicals with metal complexes follow two general mechanisms, electron transfer and ligand transfer. Direct analogy exists with wholly inorganic descriptions of outer-sphere and innersphere processes. In an electron transfer or outersphere mechanism the redox process is derived largely by transfer of an electron from reductant to oxidant, with only indirect contributions from the solvent and ligand. Carbonium ion intermediates and transition states are important considerations, and the scission of the beta-hydrogen bond is minor during oxidation of alkyl radicals to alkenes. In contrast, ligand transfer or inner-sphere mechanism demands maximum involvement of the ligand in the transition state. Free-radical character prevails; cationic contributions from the organic moiety are minimal. Oxidation and reduction are conjugate processes. In an electron transfer mechanism the oxidation of alkyl radicals to carbonium ions is conceptually represented by a microscopic reverse reaction in which a carbonium ion is reduced to an alkyl radical. A similar duality exists in the interconversion of carbanions and free radicals by metal complexes. The reversibility of the ligand transfer process is easier to observe. For example, the chlorine-transfer oxidation of alkyl radicals is represented by a microscopic reverse reduction of alkyl chlorides to alkyl radicals by cuprous chlorides. A ligand transfer counterpart of the reduction of radicals R*+Cu(II)Cl(n)<---->R-Cl+Cu(I)Cl(n-1) can also be described. Hopefully, these simple redox mechanisms will be utilized in rationalizing complex reactions and formulating new syntheses. The limited number of examples cited in this short review represent only an introduction to the vast area of chemical research to be tapped in the study of the mechanisms and the synthetic utility of oxidation-reduction reactions and catalysis.

Entities:  

Year:  1967        PMID: 17737550     DOI: 10.1126/science.155.3761.415

Source DB:  PubMed          Journal:  Science        ISSN: 0036-8075            Impact factor:   47.728


  14 in total

1.  Intermolecular Ritter-type C-H amination of unactivated sp3 carbons.

Authors:  Quentin Michaudel; Damien Thevenet; Phil S Baran
Journal:  J Am Chem Soc       Date:  2012-01-27       Impact factor: 15.419

2.  Sulfite-induced lipid peroxidation in chloroplasts as determined by ethane production.

Authors:  G D Peiser; M C Lizada; S F Yang
Journal:  Plant Physiol       Date:  1982-10       Impact factor: 8.340

3.  Iron-Catalyzed Direct Olefin Diazidation via Peroxyester Activation Promoted by Nitrogen-Based Ligands.

Authors:  Shou-Jie Shen; Cheng-Liang Zhu; Deng-Fu Lu; Hao Xu
Journal:  ACS Catal       Date:  2018-04-06       Impact factor: 13.084

4.  Process Safety Assessment of the Iron-Catalyzed Direct Olefin Diazidation for the Expedient Synthesis of Vicinal Primary Diamines.

Authors:  Hai-Tao Zhu; Luca Arosio; Roberto Villa; Marino Nebuloni; Hao Xu
Journal:  Org Process Res Dev       Date:  2017-11-08       Impact factor: 3.317

Review 5.  Synthesis and Glycosidation of Anomeric Halides: Evolution from Early Studies to Modern Methods of the 21st Century.

Authors:  Yashapal Singh; Scott A Geringer; Alexei V Demchenko
Journal:  Chem Rev       Date:  2022-06-08       Impact factor: 72.087

6.  Iron(II)-Catalyzed Intermolecular Aminofluorination of Unfunctionalized Olefins Using Fluoride Ion.

Authors:  Deng-Fu Lu; Cheng-Liang Zhu; Jeffrey D Sears; Hao Xu
Journal:  J Am Chem Soc       Date:  2016-08-26       Impact factor: 15.419

7.  Decarboxylative Halogenation of Organic Compounds.

Authors:  Andrii Varenikov; Evgeny Shapiro; Mark Gandelman
Journal:  Chem Rev       Date:  2020-11-17       Impact factor: 60.622

8.  Iron-Catalyzed Direct Diazidation for a Broad Range of Olefins.

Authors:  Yong-An Yuan; Deng-Fu Lu; Yun-Rong Chen; Hao Xu
Journal:  Angew Chem Int Ed Engl       Date:  2015-11-23       Impact factor: 15.336

9.  Alkylating ability of artemisinin after Cu(I)-induced activation.

Authors:  Fatima Bousejra-El Garah; Marguerite Pitié; Laure Vendier; Bernard Meunier; Anne Robert
Journal:  J Biol Inorg Chem       Date:  2009-02-07       Impact factor: 3.358

Review 10.  Evolution towards green radical generation in total synthesis.

Authors:  Matthew S Galliher; Bec J Roldan; Corey R J Stephenson
Journal:  Chem Soc Rev       Date:  2021-09-20       Impact factor: 60.615

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