Alkynyltriazenes in Photochemical Metal‐Free Doyle–Kirmse Rearrangements

N Ningning Liu L Linus Bjarne Dittmer (Kenneth S. Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California 1 , Berkeley, California 94720,) M Melina Maag (Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany) E Elena Michel (Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany) F Frank Rominger (Institute of Organic Chemistry) M Matthias Rudolph (Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany) A Andreas Dreuw (Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, Heidelberg 69120, Germany) A A. Stephen K. Hashmi (Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany)

Abstract

Abstract Doyle–Kirmse rearrangement reactions are widely recognized as versatile and powerful synthetic tools, promoting the simultaneous generation of C─C and C─S bonds. While notable progress has been attained, Doyle–Kirmse rearrangement reactions involving cyanocarbenes have rarely been reported owing to the limited strategies available for the preparation of cyanocarbene precursors and its inherently restricted reactivity. Herein, we report photochemical Doyle–Kirmse rearrangement reactions of alkynyl triazenes via intermediate cyanocarbenes under metal‐ and additive‐free conditions, leading to valuable α‐mercapto‐nitriles in generally moderate‐to‐good yields. In contrast to existing methods that utilize alternative cyanocarbene precurors, this approach delivers the possibility to access highly substituted stereogenic carbon centers and it offers a safer alternative by avoiding hazardous reagents. The reactions proceed under mild conditions, and demonstrate broad substrate compatibility. In addition, upscaling of the reaction was successfully demonstrated. Besides the use of allylsulfides, propargyl as well as allenylsulfides were also feasible substrates demonstrating the great synthetic potential of the transformation.

Article Details

Volume / Issue Vol. 65, Issue 7
Published February 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

N

Ningning Liu

L

Linus Bjarne Dittmer

Kenneth S. Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California 1 , Berkeley, California 94720,

M

Melina Maag

Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany

E

Elena Michel

Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany

F

Frank Rominger

Institute of Organic Chemistry

M

Matthias Rudolph

Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany

A

Andreas Dreuw

Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, Heidelberg 69120, Germany

A

A. Stephen K. Hashmi

Organisch‐Chemisches Institut Heidelberg University Im Neuenheimer Feld 270 Heidelberg 69120 Germany