Electrooxidative Ring-Opening and Strain-Release-Driven Skeletal Rearrangement of Cyclopropenes

Abstract We develop two distinct electrooxidative strategies for the ring-opening and strain-release-driven rearrangement of cyclopropenes when reacting with alcohols and trimethylsilyl azide, yielding gem-dialkoxyallylated compounds and tetrasubstituted alkenyl nitriles. The synthesis of allylated derivatives starts with the direct anodic oxidation of the cyclopropene ring to form a cyclopropene radical cation. This radical cation undergoes addition by an alkoxide (acting as a nucleophile) at the C2 position, followed by regioselective cleavage of the C1–C2 bond. For alkenyl nitriles, anodic oxidation of the radical precursor produces an azide radical that adds to the cyclopropene ring at the less-substituted C3 position. This leads to regioselective cleavage of the C1–C3 bond. Additionally, the postreaction modifications and the ability to synthesize deuterated allyl compounds further demonstrate the utility of these transformations.

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Publication Details

Journal
Organic Letters
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.orglett.6c04062
Primary Topic
Cyclopropane Reaction Mechanisms
Type
article
Field-Weighted Citation Impact
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article

Electrooxidative Ring-Opening and Strain-Release-Driven Skeletal Rearrangement of Cyclopropenes

Subhadeep Ghosh, Indrajit Das, Sumit Biswas, Suman Sekh
Organic Letters
Cyclopropane Reaction Mechanisms
article

Electrooxidative Ring-Opening and Strain-Release-Driven Skeletal Rearrangement of Cyclopropenes

Subhadeep Ghosh, Indrajit Das, Sumit Biswas, Suman Sekh
article en

Abstract

Abstract We develop two distinct electrooxidative strategies for the ring-opening and strain-release-driven rearrangement of cyclopropenes when reacting with alcohols and trimethylsilyl azide, yielding gem-dialkoxyallylated compounds and tetrasubstituted alkenyl nitriles. The synthesis of allylated derivatives starts with the direct anodic oxidation of the cyclopropene ring to form a cyclopropene radical cation. This radical cation undergoes addition by an alkoxide (acting as a nucleophile) at the C2 position, followed by regioselective cleavage of the C1–C2 bond. For alkenyl nitriles, anodic oxidation of the radical precursor produces an azide radical that adds to the cyclopropene ring at the less-substituted C3 position. This leads to regioselective cleavage of the C1–C3 bond. Additionally, the postreaction modifications and the ability to synthesize deuterated allyl compounds further demonstrate the utility of these transformations.

Organic Letters
Indian Institute of Chemical Biology (IN), Academy of Scientific and Innovative Research (IN)
Openalex Percentile: Top 24%
Cyclopropane Reaction Mechanisms
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