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Catalytic Hydroetherification of Unactivated Alkenes Enabled by Proton-Coupled Electron Transfer.


ABSTRACT: We report a catalytic, light-driven method for the intramolecular hydroetherification of unactivated alkenols to furnish cyclic ether products. These reactions occur under visible-light irradiation in the presence of an IrIII -based photoredox catalyst, a Brønsted base catalyst, and a hydrogen-atom transfer (HAT) co-catalyst. Reactive alkoxy radicals are proposed as key intermediates, generated by direct homolytic activation of alcohol O-H bonds through a proton-coupled electron-transfer mechanism. This method exhibits a broad substrate scope and high functional-group tolerance, and it accommodates a diverse range of alkene substitution patterns. Results demonstrating the extension of this catalytic system to carboetherification reactions are also presented.

SUBMITTER: Tsui E 

PROVIDER: S-EPMC7451027 | biostudies-literature | 2020 Jul

REPOSITORIES: biostudies-literature

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Catalytic Hydroetherification of Unactivated Alkenes Enabled by Proton-Coupled Electron Transfer.

Tsui Elaine E   Metrano Anthony J AJ   Tsuchiya Yuto Y   Knowles Robert R RR  

Angewandte Chemie (International ed. in English) 20200518 29


We report a catalytic, light-driven method for the intramolecular hydroetherification of unactivated alkenols to furnish cyclic ether products. These reactions occur under visible-light irradiation in the presence of an Ir<sup>III</sup> -based photoredox catalyst, a Brønsted base catalyst, and a hydrogen-atom transfer (HAT) co-catalyst. Reactive alkoxy radicals are proposed as key intermediates, generated by direct homolytic activation of alcohol O-H bonds through a proton-coupled electron-trans  ...[more]

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