Functionalization‐Mediated Synthesis of Bridge‐Coordinated Fe Atoms on MoS <sub>2</sub> Nanosheets for PEM Water Electrolyzers

Z Zakaria Anfar H Haitham Maslouh (Institut Européen Des Membranes (IEM), CNRS, ENSCM University of Montpellier (UM) Montpellier France) Y Yuwei Yang (School of Chemical Engineering) M Mathilde Moderne (IEM, UMR 5635, Université Montpellier, ENSCM, CNRS) J Jiefeng Liu L Loïc Assaud (Institut des Matériaux Poreux De Paris ESPCI CNRS ENS Université Paris Sciences &amp; Lettres Paris France) M Mikhael Bechelany C Chrystelle Salameh K Kun Qi (State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics) Y Yuying Meng (College of Chemistry and Materials Science) H Huali Wu J Ji Li N Nicholas M. Bedford (School of Chemical Engineering) D Damien Voiry (IEM, UMR 5635, Université Montpellier, ENSCM, CNRS)

Abstract

ABSTRACT Transition metal chalcogenides are among the most promising platinum group metal‐free (PGM‐free) catalysts for hydrogen production in a proton exchange membrane water electrolyzer (PEMWE). However, achieving both high activity and long‐term stability remains a critical challenge for their practical deployment. Here, we report a functionalization‐mediated synthesis of molybdenum sulfide, containing bridge‐coordinated Fe atoms ( b ‐Fe‐MoS 2 ), achieving enhanced catalytic performance for the hydrogen evolution reaction (HER). Combined detailed spectroscopic and electrochemical characterizations revealed that cysteine functionalization promotes the anchoring of Fe atoms in a bridge‐like coordination environment on the MoS 2 nanosheets, resulting in tunable electron density near the Fe sites and improved robustness of the atomic sites, as supported by our operando and post‐mortem investigations. The experimental results are complemented with density functional theory (DFT) calculations revealing that the unique coordination environment of Fe atoms modulates the hydrogen adsorption free energy. When integrated in a 25 cm 2 catalyst‐coated membrane PEM water electrolyzer, b ‐Fe‐MoS 2 achieved remarkable performance, delivering 1.55 A cm −2 at 2 V and showed stable operation over 360 h following initial activation. These results demonstrate the effectiveness of the functionalization‐mediated approach for preparing robust HER catalysts and highlight the potential of bridge‐coordinated Fe–MoS 2 cathodes for PGM‐free PEM water electrolyzers.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Z

Zakaria Anfar

H

Haitham Maslouh

Institut Européen Des Membranes (IEM), CNRS, ENSCM University of Montpellier (UM) Montpellier France

Y

Yuwei Yang

School of Chemical Engineering

M

Mathilde Moderne

IEM, UMR 5635, Université Montpellier, ENSCM, CNRS

J

Jiefeng Liu

L

Loïc Assaud

Institut des Matériaux Poreux De Paris ESPCI CNRS ENS Université Paris Sciences &amp; Lettres Paris France

M

Mikhael Bechelany

C

Chrystelle Salameh

K

Kun Qi

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics

Y

Yuying Meng

College of Chemistry and Materials Science

H

Huali Wu

J

Ji Li

N

Nicholas M. Bedford

School of Chemical Engineering

D

Damien Voiry

IEM, UMR 5635, Université Montpellier, ENSCM, CNRS