Heavy is the Crown: Crown Ether Modulation of Cobalt Porphyrin CO <sub>2</sub> Electroreduction in Zero‐Gap Electrolyzers

W Wiebke Wiesner (Lehrstuhl Für Anorganische Chemie I Ruhr‐Universität Bochum Bochum Germany) C Christian Wilhelm (Department Chemie Ludwig‐Maximilians‐Universität München München Germany) R Rahel Cornelia Hoffmann (Department Chemie Ludwig‐Maximilians‐Universität München München Germany) P Peter Stahl (Department Chemie Ludwig‐Maximilians‐Universität München München Germany) K Kevinjeorjios Pellumbi (Department Power‐to‐Chemicals Fraunhofer‐Institut Für Umwelt‐ Sicherheits‐ und Energietechnik UMSICHT Oberhausen Germany) J Julia Jökel (Department Power‐to‐Chemicals Fraunhofer‐Institut Für Umwelt‐ Sicherheits‐ und Energietechnik UMSICHT Oberhausen Germany) I Ivana Ivanović‐Burmazović (Department of Chemistry Ludwig‐Maximilians University München Germany) U Ulf‐Peter Apfel (Ruhr‐Universität Bochum Fakultät Für Chemie und Biochemie Anorganische Chemie I Bochum Germany)

Abstract

ABSTRACT Since decades, metalloporphyrins have been studied to catalyze the electrochemical CO 2 reduction (eCO 2 R) with the most recent studies focusing on immobilized complexes aiming for heterogeneous, scalable catalysis. However, reports for the application in industrially relevant zero‐gap type electrolyzer cells (ZGEs) are especially rare. Herein we present the synthesis of four novel crown ether (CE) substituted cobalt porphyrins to benefit from an increased local cation concentration. Following their electrochemical characterization all catalysts have been tested in ZGEs. Experiments under laboratory‐scale conditions (≤100 mA/cm 2 ) revealed that the positioning of the CE influences the catalytic performance in terms of Faradaic Efficiency for CO (FE CO ) as well as cell voltage. A maximum selectivity for CO of 96% at 100 mA/cm 2 is reached, ranking the ortho substituted complex among the best state of the art systems. Post‐mortem analysis of the prepared electrodes proved that the introduction of CEs enhances the complex stability significantly. At higher current densities (≤500 mA/cm 2 ) the positioning of the CEs is less impactful. Instead, the type and concentration of cations in the reactor play a dominant role determining reaction performance, achieving up to 43% FE CO at 300 mA/cm 2 with a high potassium concentration.

Article Details

Volume / Issue Vol. 65, Issue 11
Published March 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

W

Wiebke Wiesner

Lehrstuhl Für Anorganische Chemie I Ruhr‐Universität Bochum Bochum Germany

C

Christian Wilhelm

Department Chemie Ludwig‐Maximilians‐Universität München München Germany

R

Rahel Cornelia Hoffmann

Department Chemie Ludwig‐Maximilians‐Universität München München Germany

P

Peter Stahl

Department Chemie Ludwig‐Maximilians‐Universität München München Germany

K

Kevinjeorjios Pellumbi

Department Power‐to‐Chemicals Fraunhofer‐Institut Für Umwelt‐ Sicherheits‐ und Energietechnik UMSICHT Oberhausen Germany

J

Julia Jökel

Department Power‐to‐Chemicals Fraunhofer‐Institut Für Umwelt‐ Sicherheits‐ und Energietechnik UMSICHT Oberhausen Germany

I

Ivana Ivanović‐Burmazović

Department of Chemistry Ludwig‐Maximilians University München Germany

U

Ulf‐Peter Apfel

Ruhr‐Universität Bochum Fakultät Für Chemie und Biochemie Anorganische Chemie I Bochum Germany