Unraveling the Structural Dynamics in Ammonia Synthesis over the Strontium Fluoride-Supported Ruthenium Catalyst

Abstract The catalytic synthesis of ammonia (NH3) is a cornerstone of the chemical industry. However, to date, direct visualization of the reactant-support interaction and the structural dynamics of catalyst surface/interfaces during efficient NH3 synthesis remain scarce. Herein, this article elucidates the dynamic structural evolution of a previously unreported catalyst Ru/SrF2 by utilizing multiple in situ techniques. The in situ environmental transmission electron microscopy technique not only visualizes the N2/H2 exposure-induced reversible surface rearrangement of SrF2 from (100) to (111) with lamellar nanostructures but also unravels the reaction-driven cyclic reconstruction of the Ru/SrF2 surface-interface under the N2–H2 mixture. The catalytically-active sites are identified mainly as the fluorine vacancy (VF)-centered Ru0-VF-Srγ+ perimeter sites. These sites are abundantly generated due to the recurring surface-interface reconstruction over Ru/SrF2 and underlie the catalyst’s exceptional performance under mild conditions. This work may inspire more advanced operando studies for understanding catalytic mechanisms and developing practical catalysts.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-15
DOI
https://doi.org/10.1021/jacs.6c12200
Primary Topic
Ammonia Synthesis and Nitrogen Reduction
Type
article
Field-Weighted Citation Impact
0.00

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article

Unraveling the Structural Dynamics in Ammonia Synthesis over the Strontium Fluoride-Supported Ruthenium Catalyst

Jiannian Yao, Yongan Yang, Xiuyun Wang, Xing Chen et al.
Journal of the American Chemical Society
Ammonia Synthesis and Nitrogen Reduction
article

Unraveling the Structural Dynamics in Ammonia Synthesis over the Strontium Fluoride-Supported Ruthenium Catalyst

Jiannian Yao, Yongan Yang, Xiuyun Wang, Xing Chen, Xiaorou Cao, Lilong Jiang, Yangyu Zhang, Xuanbei Peng, Langli Luo, Xi Wang, Yanru Wang, Haolong Chang, Yifan Yan, Haoran Qian, Jiakai Wang, Zhenjie Sun, Xiaohu Hu, Zhongliang Cao, Tianhua Zhang
article en

Abstract

Abstract The catalytic synthesis of ammonia (NH3) is a cornerstone of the chemical industry. However, to date, direct visualization of the reactant-support interaction and the structural dynamics of catalyst surface/interfaces during efficient NH3 synthesis remain scarce. Herein, this article elucidates the dynamic structural evolution of a previously unreported catalyst Ru/SrF2 by utilizing multiple in situ techniques. The in situ environmental transmission electron microscopy technique not only visualizes the N2/H2 exposure-induced reversible surface rearrangement of SrF2 from (100) to (111) with lamellar nanostructures but also unravels the reaction-driven cyclic reconstruction of the Ru/SrF2 surface-interface under the N2–H2 mixture. The catalytically-active sites are identified mainly as the fluorine vacancy (VF)-centered Ru0-VF-Srγ+ perimeter sites. These sites are abundantly generated due to the recurring surface-interface reconstruction over Ru/SrF2 and underlie the catalyst’s exceptional performance under mild conditions. This work may inspire more advanced operando studies for understanding catalytic mechanisms and developing practical catalysts.

Journal of the American Chemical Society
Tianjin University (CN), Beijing Jiaotong University (CN), Sustainable Innovation (Sweden) (SE), Institute of Mechanics (BG), Fuzhou University (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China, Seed Foundation of Tianjin University
Industry, innovation and infrastructure
Openalex Percentile: Top 31%
Ammonia Synthesis and Nitrogen Reduction
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