Identification of Ti(salen) Complexes for Efficient Catalysis in Single‐Electron Steps by Cyclic Voltammetry

N Niklas Schmickler (Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany) S Sergei Gerber (Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany) L Lennart Hanz (Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany) S Stefan Grimme (Mulliken Center for Theoretical Chemistry, Clausius Institute for Physical and Theoretical Chemistry, University of Bonn, Beringstraße 4, Bonn 53115, Germany) Z Zheng‐Wang Qu (Mulliken Center for Theoretical Chemistry Universität Bonn Beringstraße 4 53115 Bonn Germany) I Inke Siewert (University of Göttingen, Institute of Inorganic Chemistry, Tammannstraße 4, D-37077 Göttingen, Germany) A Andreas Gansäuer (Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany)

Abstract

Abstract We describe the identification of an active Ti(salen) catalyst for the radical arylation of epoxides by a cyclic voltammetry study of mechanism‐based predictors, such as the redox potentials of the complexes and their E q C r ‐equilibria, for the success of catalysis. Surprisingly, by far the most active catalyst features an uncommon tetrasubstituted ligand backbone, which renders chloride binding to the active Ti(III) species less favorable, thereby increasing catalyst activity due to improved substrate binding. Catalysis is most efficient in the “green” solvent ethyl acetate and can be initiated using base metals as well as electrochemical methods for the reduction of the Ti(salen)‐precatalyst. Compared to the commonly employed titanocene catalysis, the use of the newly developed Ti(salen) catalyst allows for the use of milder and more sustainable reactions conditions, a broader substrate scope, and facile modification of the catalyst's electronic and steric properties.

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 (7)

N

Niklas Schmickler

Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany

S

Sergei Gerber

Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany

L

Lennart Hanz

Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany

S

Stefan Grimme

Mulliken Center for Theoretical Chemistry, Clausius Institute for Physical and Theoretical Chemistry, University of Bonn, Beringstraße 4, Bonn 53115, Germany

Z

Zheng‐Wang Qu

Mulliken Center for Theoretical Chemistry Universität Bonn Beringstraße 4 53115 Bonn Germany

I

Inke Siewert

University of Göttingen, Institute of Inorganic Chemistry, Tammannstraße 4, D-37077 Göttingen, Germany

A

Andreas Gansäuer

Kekulé‐Institut für Organische Chemie und Biochemie Universität Bonn Gerhard‐Domagk‐Straße 1 53121 Bonn Germany