Breaking the Linear Scaling Relations for the Oxygen Reduction Reaction with a Dual‐Atom Catalyst Composed of a MnFe‐Porphyrrole Aerogel

E Eliana Lebowitz (Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel) P Prasenjit Das (Department of Chemistry, Functional Materials) Łukasz Kielesiński (Institute of Organic Chemistry of Polish Academy of Sciences Warsaw 01–224 Poland) L Leigh Peles‐Strahl (Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel) D David A. Cullen (Center for Nanophase Materials Sciences) I Ilya Grinberg (Department of Chemistry) D Daniel T. Gryko (Institute of Organic Chemistry, Polish Academy of Sciences, Ul. Kasprzaka 44/52, Warsaw 01-224, Poland) L Lior Elbaz (Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel)

Abstract

Abstract Bimetallic catalysts offer enhanced catalytic performance through synergistic interactions between the two metals, allowing them to break the linear scaling relations and reach high electrocatalytic activity. This study presents bimetallic aerogel‐based catalyst synthesized as a covalent, three‐dimensional framework containing neighboring iron and manganese sites. The aerogel structure provides a high surface area and porosity, facilitating an ultra‐high active site density and efficient mass transport. The MnFe porphyrrole's unique structure is obtained by alternately linking Mn‐porphyrin and Fe‐corrole complexes. It exhibited outstanding performance with an onset potential of 0.99 V RHE . Comparative studies with a free‐base Fe porphyrrole catalyst ( E onset 0.97 V RHE ) revealed that while Mn incorporation led to only a slight improvement in half‐cell performance, it resulted in significantly enhanced performance in anion exchange membrane fuel cell. The MnFe catalyst achieved an OCV of 0.97 V and a peak power density of 0.27 W cm − 2 , outperforming the free‐base Fe counterpart. Using density functional theory calculations, we show that the higher ORR activity of MnFe‐porphyrrole is due to charge transfer between Mn and Fe atoms, which is absent in the reference free‐base Fe‐porphyrrole. These findings underscore the advantages of bimetallic catalysts in improving ORR activity and fuel cell efficiency by leveraging synergistic effects.

Article Details

Volume / Issue Vol. 64, Issue 44
Published October 27, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

E

Eliana Lebowitz

Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel

P

Prasenjit Das

Department of Chemistry, Functional Materials

Łukasz Kielesiński

Institute of Organic Chemistry of Polish Academy of Sciences Warsaw 01–224 Poland

L

Leigh Peles‐Strahl

Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel

D

David A. Cullen

Center for Nanophase Materials Sciences

I

Ilya Grinberg

Department of Chemistry

D

Daniel T. Gryko

Institute of Organic Chemistry, Polish Academy of Sciences, Ul. Kasprzaka 44/52, Warsaw 01-224, Poland

L

Lior Elbaz

Chemistry Department, Bar‐Ilan Center for Nanotechnology and Advanced Materials Bar‐Ilan University Ramat‐Gan 5290002 Israel