Carbon‐Supported Single Fe/Co/Ni Atom Catalysts for Water Oxidation: Unveiling the Dynamic Active Sites

W Wenchao Wan (Department of Chemistry, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland) L Liqun Kang (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany) A Alexander Schnegg (Max Planck Institute for Chemical Energy Conversion, 34-36 Stiftstraße, Mülheim an der Ruhr 45470, Germany) O Olaf Ruediger (Max Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany) Z Zongkun Chen (Global Energy Interconnection Research Institute Europe GmbH Berlin Germany) C Christopher S. Allen L Longxiang Liu (Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.) S Sonia Chabbra (Max Planck Institute for Chemical Energy Conversion) S Serena DeBeer (Department of Inorganic Spectroscopy, Max Planck Institute for Chemical Energy Conversion, Stiftstraße 34–36, 45470 Mülheim an der Ruhr, Germany) S Saskia Heumann (Max Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany)

Abstract

Abstract Extensive research has been conducted on carbon‐supported single‐atom catalysts (SACs) for electrochemical applications, owing to their outstanding conductivity and high metal atom utilization. The atomic dispersion of active sites provides an ideal platform to investigate the structure–performance correlations. Despite this, the development of straightforward and scalable synthesis methods, along with the tracking of the dynamic active sites under catalytic conditions, remains a significant challenge. Herein, we introduce a biomass‐inspired coordination confinement strategy to construct a series of carbon‐supported SACs, incorporating various metal elements, such as Fe, Co, and Ni. We have systematically characterized their electronic and geometric structure using various spectroscopic and microscopic techniques. Through in situ X‐ray absorption spectroscopy (XAS), atomic scanning transmission electron microscopy (STEM), and electron paramagnetic resonance (EPR) analyses, it is demonstrated that the single atoms undergo structural rearrangement to form amorphous (oxy)hydroxide clusters during oxygen evolution reaction (OER), where the newly formed oxygen‐bridged dual metal M─O─M or M─O─M’ (M/M’ = Fe, Co, Ni) moieties within these clusters play key role in the OER performance. This work provides essential insights into tracking the actual active sites of SACs during electrochemical OER.

Article Details

Volume / Issue Vol. 64, Issue 25
Published June 17, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

W

Wenchao Wan

Department of Chemistry, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland

L

Liqun Kang

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany

A

Alexander Schnegg

Max Planck Institute for Chemical Energy Conversion, 34-36 Stiftstraße, Mülheim an der Ruhr 45470, Germany

O

Olaf Ruediger

Max Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany

Z

Zongkun Chen

Global Energy Interconnection Research Institute Europe GmbH Berlin Germany

C

Christopher S. Allen

L

Longxiang Liu

Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.

S

Sonia Chabbra

Max Planck Institute for Chemical Energy Conversion

S

Serena DeBeer

Department of Inorganic Spectroscopy, Max Planck Institute for Chemical Energy Conversion, Stiftstraße 34–36, 45470 Mülheim an der Ruhr, Germany

S

Saskia Heumann

Max Planck Institute for Chemical Energy Conversion 45470 Mülheim an der Ruhr Germany