Electrochemical Oxidative Dearomatization of Indole with Carboxylic Acid via 1,2-Acyloxy Migration for the Synthesis of C2-Quaternary Indolin-3-ones

Abstract Herein, we develop an efficient KBr-promoted electrochemical strategy that enables the oxidative dearomatization of indoles with carboxylic acids via 1,2-acyloxy migration, establishing a mechanistically different method to synthesize structurally diverse C2-quaternary indolin-3-ones using H2O as an oxygen atom source. This metal- and chemical-oxidant-free protocol proceeds in an undivided cell, exhibiting a broad substrate scope and good functional group tolerance. Mechanistic investigations, including control experiments and isotope-labeling studies, support a C-3 esterification/1,2-acyloxy migration cascade pathway.

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Publication Details

Journal
Organic Letters
Published
2026-10-09
DOI
https://doi.org/10.1021/acs.orglett.6c03432
Primary Topic
Synthesis of Indole Derivatives
Type
article
Field-Weighted Citation Impact
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article

Electrochemical Oxidative Dearomatization of Indole with Carboxylic Acid via 1,2-Acyloxy Migration for the Synthesis of C2-Quaternary Indolin-3-ones

Qiang Xiao, Mu‐Jia Luo, Jiang Bai, Jiaxin Chen et al.
Organic Letters
Synthesis of Indole Derivatives
article

Electrochemical Oxidative Dearomatization of Indole with Carboxylic Acid via 1,2-Acyloxy Migration for the Synthesis of C2-Quaternary Indolin-3-ones

Qiang Xiao, Mu‐Jia Luo, Jiang Bai, Jiaxin Chen, Xian‐Rong Song, Yang Ruchun
article en

Abstract

Abstract Herein, we develop an efficient KBr-promoted electrochemical strategy that enables the oxidative dearomatization of indoles with carboxylic acids via 1,2-acyloxy migration, establishing a mechanistically different method to synthesize structurally diverse C2-quaternary indolin-3-ones using H2O as an oxygen atom source. This metal- and chemical-oxidant-free protocol proceeds in an undivided cell, exhibiting a broad substrate scope and good functional group tolerance. Mechanistic investigations, including control experiments and isotope-labeling studies, support a C-3 esterification/1,2-acyloxy migration cascade pathway.

Organic Letters
Jiangxi Science and Technology Normal University (CN)
Openalex Percentile: Top 25%
Synthesis of Indole Derivatives
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