Reimagining the Wolff-Kishner Reduction: Light-Driven Carbonyl Deoxygenation without Strong Base

Abstract The Wolff-Kishner reduction is a classical method for the deoxygenation of ketones and aldehydes, yet superstoichiometric amounts of strong base and high temperatures are generally required. Herein, we report a light-driven protocol for the Wolff-Kishner reduction of aryl and aliphatic carbonyls at near-ambient temperature under essentially neutral conditions. By harnessing light energy to overcome thermodynamic constraints, this method addresses central drawbacks of traditional Wolff-Kishner reactivity, such as ester and amide hydrolysis, α-carbonyl epimerization, and azine formation. Preliminary mechanistic studies provide insights into the distinct, substrate-dependent activation modes and reaction pathways. This work further illustrates the ways in which excited-state reactivity paradigms can enable the reimagination of classical organic transformations.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-28
DOI
https://doi.org/10.1021/jacs.6c16630
Primary Topic
Radical Photochemical Reactions
Type
article
Field-Weighted Citation Impact
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article

Reimagining the Wolff-Kishner Reduction: Light-Driven Carbonyl Deoxygenation without Strong Base

Robert R. Knowles, Eric Palomo, Andrew G. Feng, Supeng Wu
Journal of the American Chemical Society
Radical Photochemical Reactions
article

Reimagining the Wolff-Kishner Reduction: Light-Driven Carbonyl Deoxygenation without Strong Base

Robert R. Knowles, Eric Palomo, Andrew G. Feng, Supeng Wu
article en

Abstract

Abstract The Wolff-Kishner reduction is a classical method for the deoxygenation of ketones and aldehydes, yet superstoichiometric amounts of strong base and high temperatures are generally required. Herein, we report a light-driven protocol for the Wolff-Kishner reduction of aryl and aliphatic carbonyls at near-ambient temperature under essentially neutral conditions. By harnessing light energy to overcome thermodynamic constraints, this method addresses central drawbacks of traditional Wolff-Kishner reactivity, such as ester and amide hydrolysis, α-carbonyl epimerization, and azine formation. Preliminary mechanistic studies provide insights into the distinct, substrate-dependent activation modes and reaction pathways. This work further illustrates the ways in which excited-state reactivity paradigms can enable the reimagination of classical organic transformations.

Journal of the American Chemical Society
Princeton University (US)
Openalex Percentile: Top 22%
Radical Photochemical Reactions
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