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Theoretical investigation on the elusive biomimetic iron(III)-iodosylarene chemistry: An unusual hydride transfer triggers the Ritter reaction

Title
Theoretical investigation on the elusive biomimetic iron(III)-iodosylarene chemistry: An unusual hydride transfer triggers the Ritter reaction
Authors
Gao, LanpingChen, XiaoluSun, DongruZhao, HuaZhao, YufenNam, WonwooWang, Yong
Ewha Authors
남원우
SCOPUS Author ID
남원우scopus
Issue Date
2021
Journal Title
CHINESE CHEMICAL LETTERS
ISSN
1001-8417JCR Link

1878-5964JCR Link
Citation
CHINESE CHEMICAL LETTERS vol. 32, no. 12, pp. 3857 - 3861
Keywords
Reaction mechanismDFT calculationsMetal-iodosylbenzeneRitter reactionOlefin oxidation
Publisher
ELSEVIER SCIENCE INC
Indexed
SCIE; SCOPUS WOS
Document Type
Article
Abstract
Introduction of iodosylarnes into biomimetic nonheme chemistry has made great achievement on identification of the subtle metal-oxygen reaction intermediates. However, after more than three decades of experimental and theoretical efforts the nature of the metal-iodosylarene adducts and the related dichotomous one-oxidant/multiple-oxident controversy have remained a matter of speculation. Herein, we report a theoretical study of the structure-activity relationship of the noted iron(III)-iodsylarene complex, FeIII (PhIO)(OTf)(3) (1), in oxygenation of cyclohexene. The calculated results revealed that 1 behaves like a chameleon by adapting its roles as a 2e-oxidant or an oxygen donor, as a response to the regioselective attack of the C-H bond and the C=C bond. The oxidative C-H bond activation by 1 was found, for the first time, to proceed via a novel hydride transfer process to form a cyclohexene carbonium intermediate, such non-rebound step triggers the Ritter reaction to uptake an acetonitrile molecule to form the amide product, or proceeds with the rebound of the hydroxyl group return to the solvent cage to form the hydroxylated product. While in the C=C bond activation, 1 is a normal oxygen donor and shows two-state reactivity to present the epoxide product via a direct oxygen atom transfer mechanism. These mechanistic findings fit and explain the famous Valentine's experiments and enrich the non-rebound scenario in bioinorganic chemistry. (C) 2021 Published by Elsevier B.V. on behalf of Chinese Chemical Society and Institute of Materia Medica, Chinese Academy of Medical Sciences.
DOI
10.1016/j.cclet.2021.05.030
Appears in Collections:
자연과학대학 > 화학·나노과학전공 > Journal papers
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