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Published on: December 6, 2021
Revealing electric field on low temperature ammonia decomposition activity over ceria-supported catalyst
Xiaobo Wang1, Anru Yan1, Ling Zhu1
1Institute of Laser Engineering, School of Physics and Optoelectronic Engineering, Beijing University of Technology, Beijing 100124, China.
Abstract:
Ammonia decomposition is a promising strategy to address critical challenges in hydrogen storage and transportation, thereby facilitating the widespread adoption of fuel-cell technologies. However, conventional catalytic require harsh conditions (600 °C) for complete conversion. In this study, we report nanocluster Ru/CeO2 and Ni/CeO2 catalysts integrated with electric field-assisted catalysis to achieve efficient ammonia decomposition under significantly milder conditions (≤400 °C). With electric field, Ru/CeO2 and Ni/CeO2 achieve 100 % and 60 % conversion at 400 °C, and maintain 62 % and 15 % conversion even at 150 °C accompanied by substantial reductions in activation energy (79.5 % and 78.9 %, respectively). Long-term stability tests reveal minimal activity loss (<3 %) over 48 h. Mechanistic studies show that the electric field promotes the formation of Ru-O-Ce bonds, thereby enhancing the strong metal-support interaction (SMSI). This facilitates electron transfer from CeO2 to the metal site, enhancing NH3 adsorption and activation, while weakening the interaction between metal and N to promote N2 desorption. Additionally, electric field-induced proton hopping accelerates hydrogen spillover and suppresses hydrogen poisoning. This work provides a new approach for low temperature, high efficiency ammonia decomposition, offering a viable path for next-generation hydrogen energy infrastructure.
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