Issue 5, 2023

HFIP-assisted reductive C–S, C–N, and C–X coupling of carbonyl compounds: a combined computational and experimental mechanistic study

Abstract

Owing to the importance of carbon–heteroatom bonds in synthetic organic chemistry and pharmaceuticals, developing reliable and catalyst-free methods for their construction sets a significant goal of high practical value for modern chemistry. The currently known approaches typically rely on pre-functionalized substrates or on combining catalysts with reducing agents incurring substantial cost and time. Herein, we report an expeditious HFIP-assisted direct reductive C–S, C–N, and C–X (X = Cl, I) coupling of carbonyl compounds with different nucleophiles using Me2SiClH as a mild reducing reagent. In this protocol, the solvent HFIP is essential for the activation of the carbonyl group. This approach is effective, operationally simple, and scalable. The methodology features a broad substrate scope and high functional group compatibility, demonstrating the synthetic potential in the late-stage modification of bioactive molecules. By combining control experiments with ab initio computational simulations we have also proposed a mechanism for this coupling reaction.

Graphical abstract: HFIP-assisted reductive C–S, C–N, and C–X coupling of carbonyl compounds: a combined computational and experimental mechanistic study

Supplementary files

Article information

Article type
Research Article
Submitted
04 Dec 2022
Accepted
17 Jan 2023
First published
19 Jan 2023

Org. Chem. Front., 2023,10, 1275-1282

HFIP-assisted reductive C–S, C–N, and C–X coupling of carbonyl compounds: a combined computational and experimental mechanistic study

J. Khan, A. Tyagi, D. Ghosh and C. K. Hazra, Org. Chem. Front., 2023, 10, 1275 DOI: 10.1039/D2QO01932A

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