Phototransposition of Indazoles to Benzimidazoles: Tautomer‐Dependent Reactivity, Wavelength Dependence, and Continuous Flow Studies

G G. Logan Bartholomew (Department of Chemistry University of California, Berkeley Berkeley California 94720 USA) S Sojung F. Kim (Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, United States) Y Yusuke Oyamada (Department of Chemistry University of California, Berkeley Berkeley California 94720 USA) F Federica Sbordone (Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany) J Joshua A. Carroll (School of Chemistry and Physics, Queensland University of Technology (QUT), 2 George Street, Brisbane, QLD 4000, Australia) J Justin E. Jurczyk (Process Chemistry Gilead Sciences, Inc. Foster City California 94404 USA) C Charles S. Yeung (Merck & Co., Inc., 33 Avenue Louis Pasteur, Boston, Massachusetts 02115, United States) C Christopher Barner‐Kowollik (Soft Matter Materials Laboratory School of Chemistry and Physics Queensland University of Technology (QUT) Brisbane Queensland Australia) R Richmond Sarpong (Department of Chemistry)

Abstract

Abstract Herein, we report a detailed investigation of the photomediated transformation of indazoles to benzimidazoles through a nitrogen–carbon transposition. This phototransposition is known to occur in low yield when 1 H ‐indazoles are subjected to high‐energy UVC irradiation. The 2 H ‐tautomer of indazole absorbs light more strongly than the 1 H ‐tautomer at longer wavelengths. We leveraged this improved absorbance profile to develop a general system for the high‐yielding conversion of N2‐derivatized indazoles (prepared from the corresponding 1 H ‐indazoles) to the corresponding benzimidazoles under UVB or UVA irradiation in up to 98% yield. Investigation of the substrate scope revealed a strong correlation between reaction yield and electron density at N2 of the indazole substrate, suggesting the importance of the availability of the lone pair at this position for reaction efficiency. In addition, evaluation of wavelength‐dependent reactivity through the generation of a photochemical action plot revealed that the highest conversion does not only occur at the substrate's maximum absorbance wavelength but also on its red‐side, enabling the use of longer wavelength irradiation to achieve high yields. Building on these insights, a continuous flow protocol was established that enables the phototransposition on preparative scale.

Article Details

Volume / Issue Vol. 64, Issue 31
Published July 28, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

G

G. Logan Bartholomew

Department of Chemistry University of California, Berkeley Berkeley California 94720 USA

S

Sojung F. Kim

Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, United States

Y

Yusuke Oyamada

Department of Chemistry University of California, Berkeley Berkeley California 94720 USA

F

Federica Sbordone

Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany

J

Joshua A. Carroll

School of Chemistry and Physics, Queensland University of Technology (QUT), 2 George Street, Brisbane, QLD 4000, Australia

J

Justin E. Jurczyk

Process Chemistry Gilead Sciences, Inc. Foster City California 94404 USA

C

Charles S. Yeung

Merck & Co., Inc., 33 Avenue Louis Pasteur, Boston, Massachusetts 02115, United States

C

Christopher Barner‐Kowollik

Soft Matter Materials Laboratory School of Chemistry and Physics Queensland University of Technology (QUT) Brisbane Queensland Australia

R

Richmond Sarpong

Department of Chemistry