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Updated: May 5, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Oxygen-Vacancy-Engineered Ru/Sr-Doped CeO2 Catalysts Enable Accelerated N-H Cleavage and N-N Recombination for
Qasim Qasim1, Jing Li2, Ye Wang3
1Institute of New Energy and Low-Carbon Technology, Sichuan University, Chengdu 610065, China.
Abstract:
Ammonia is a promising vector for hydrogen storage and transport; however, its catalytic decomposition is often limited by the kinetic trade-off between N-H bond cleavage and N-N recombination. Herein, we report a Ru/Sr-doped CeO2 catalyst in which aliovalent Sr2+ substitution for Ce4+ induces abundant oxygen vacancies (Ov). The optimized Ru/Sr0.1Ce0.9O2-δ exhibits higher NH3 conversion at 450 °C, delivering a hydrogen production rate of 2713 mmolgRu-1 min-1 (45% higher than pristine Ru/CeO2), outperforming most reported Ru-based systems. Combined characterization and DFT calculations revealed that Sr doping introduced lattice charge imbalance, lowering the energy barrier for oxygen vacancies (Ov) formation. The increased vacancy concentration alters the local electronic structure and enhances electron transfer to Ru. Together, these effects modulate NH3 adsorption and activation while facilitating N-N recombination. Furthermore, the defective support promotes hydrogen spillover from Ru to the support, effectively mitigating hydrogen poisoning and ensuring remarkable stability under realistic conditions. This study demonstrates that vacancy engineering via aliovalent doping establishes favorable electronic and hydrogen spillover characteristics, thereby enabling efficient and durable NH3-to-H2 conversion.
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