Embedding Ru Clusters and Single Atoms into Perovskite Oxide Boosts Nitrogen Fixation and Affords Ultrahigh Ammonia Yield Rate

Author:

Han Zhiya1,Tranca Diana2,Rodríguez‐Hernández Fermín3,Jiang Kaiyue2,Zhang Jichao4,He Mingyuan1,Wang Fu5,Han Sheng6,Wu Peng1,Zhuang Xiaodong2ORCID

Affiliation:

1. Department of Chemistry Shanghai Key Laboratory of Green Chemistry and Chemical Process East China Normal University 3663 Zhongshan North Road Shanghai 200062 P. R. China

2. The meso‐Entropy Matter Lab State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering Frontiers Science Center for Transformative Molecules Shanghai Jiao Tong University 800 Dongchuan Road Shanghai 200240 P. R. China

3. Departamento de Química Universidad Autónoma de Madrid Módulo 13 Madrid 28049 Spain

4. Shanghai Synchrotron Radiation Facility Zhangjiang Laboratory Shanghai Advanced Research Institute Chinese Academy of Sciences 239, Zhangheng Road Shanghai 201204 P. R. China

5. Med‐X Research Institute and School of Biomedical Engineering State Environmental Protection Key Laboratory of Environmental Health Impact Assessment of Emerging Contaminants Shanghai Jiao Tong University 800 Dongchuan Road Shanghai 200240 P. R. China

6. School of Chemical and Environmental Engineering Shanghai Institute of Technology 100 Haiquan Road Shanghai 201418 P. R. China

Abstract

AbstractAmmonia is a key chemical feedstock worldwide. Compared with the well‐known Haber–Bosch method, electrocatalytic nitrogen reduction reaction (ENRR) can eventually consume less energy and have less CO2 emission. In this study, a plasma‐enhanced chemical vapor deposition method is used to anchor transition metal element onto 2D conductive material. Among all attempts, Ru single‐atom and Ru‐cluster‐embedded perovskite oxide are discovered with promising electrocatalysis performance for ENRR (NH3 yield rate of up to 137.5 ± 5.8 µg h−1 mgcat−1 and Faradaic efficiency of unexpected 56.9 ± 4.1%), reaching the top record of Ru‐based catalysts reported so far. In situ experiments and density functional theory calculations confirm that the existence of Ru clusters can regulate the electronic structure of Ru single atoms and decrease the energy barrier of the first hydrogenation step (*NN to *NNH). Anchoring Ru onto various 2D perovskite oxides (LaMO‐Ru, MCr, Mn, Co, or Ni) also show boosted ENRR performance. Not only this study provides an unique strategy toward transition‐metal‐anchored new 2D conductive materials, but also paves the way for fundamental understanding the correlation between cluster‐involved single‐atom sites and catalytic performance.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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