Hydrogen Affinity in Intermetallic Electrides as a Key Indicator of Catalytic Performance in Ammonia Synthesis

F Fangkun Sun (Department of Materials Science and Engineering) J Jiang Li (State Key Laboratory of Bioactive Substance and Function of Natural Medicines, Institute of Materia Medica) Y Yijia Liu Y Yutong Gong (State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University Xi'an Shanxi 710072 China) P Peilan Shi (Department of Materials Science Engineering Southern University of Science and Technology Shenzhen Guangdong 518055 China) M Masaaki Kitano (MDX Research Center for Element Strategy) H Hideo Hosono (National Institute for Materials Science (NIMS)) J Jiazhen Wu (Department of Materials Science and Engineering)

Abstract

Abstract Electrides have emerged as promising catalysts or catalyst supports for efficient ammonia synthesis under mild conditions. ATmSi compounds (A = rare earth/alkaline earth, Tm = transition metal) with a tetragonal CeFeSi‐type structure represent a class of intermetallic electrides, where lattice atoms serve as active sites, offering significant potential for catalytic applications. However, with over 25 ATmSi compounds, their catalytic performance variations and optimization strategies remain poorly understood. In this study, we systematically investigated the structure‐activity relationship of ATmSi compounds, focusing on their anionic electron properties and hydrogen storage capabilities. Analysis of lattice parameters revealed the A–A interlayer distance as a descriptor of anionic electron concentration, with the non‐electride CaRuSi exhibiting a notable reduction in this distance due to minimal anionic electrons. The catalytic activities in ARuSi, ACoSi, and AFeSi systems all increase with the expansion of A–A interlayer spacing. Furthermore, hydrogen storage properties, where anionic electrons are replaced by hydride ions, were evaluated. It is critical for N 2 hydrogenation. The hydrogen affinity, gauged by the desorption temperature, proved pivotal in determining catalytic efficiency, with optimal performance requiring balanced hydrogen binding strength. These findings provide critical insights for designing advanced catalysts for ammonia synthesis and potentially other hydrogenation reactions.

Article Details

Volume / Issue Vol. 64, Issue 49
Published December 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

F

Fangkun Sun

Department of Materials Science and Engineering

J

Jiang Li

State Key Laboratory of Bioactive Substance and Function of Natural Medicines, Institute of Materia Medica

Y

Yijia Liu

Y

Yutong Gong

State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University Xi'an Shanxi 710072 China

P

Peilan Shi

Department of Materials Science Engineering Southern University of Science and Technology Shenzhen Guangdong 518055 China

M

Masaaki Kitano

MDX Research Center for Element Strategy

H

Hideo Hosono

National Institute for Materials Science (NIMS)

J

Jiazhen Wu

Department of Materials Science and Engineering