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Updated: May 29, 2025

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Published on: February 19, 2018
Cerium Oxide with Specific Surface Oxygen Vacancy and Facet for Nitrate Synthesis through Electrocatalytic Nitrogen
Quan Li1, Mingrui Wu1, Zhengting Xiao1,2
1Key Laboratory of Marine Chemistry Theory and Technology, Ministry of Education; College of Chemistry and Chemical Engineering, Ocean University of China, Qingdao 266100, China.
Abstract:
Recently, the green and sustainable synthesis of nitric acid (HNO3) through the electrochemical nitrogen oxidation reaction (NOR) has attracted significant attention. Developing high-efficiency electrocatalysts to overcome the challenges caused by the chemical inertness of N2 and the slow, 10-electron transfer kinetics is highly desirable. In this work, we investigated the NOR performance of cerium oxide (CeO2), which is known for its excellent oxygen storage and release capabilities. The concentration of oxygen vacancies and the morphology with different specific surface areas and exposed crystal facets have a significant influence on NOR activity. The hollow nanosphere with primarily exposed {111} facets exhibits the highest oxygen vacancy content (35.07%) and the largest surface area (101.26 m2/g), leading to an optimal NO3- yield of 383.06 μmol·h-1·gcat-1 with a Faradic efficiency (FE) of 5.17% at 1.7 V vs RHE. In situ Fourier transform infrared (FTIR) spectroscopy confirmed the formation of *NO2, *NO, and NO3- species on the CeO2 hollow nanosphere electrode during the NOR. Theoretical calculations were also performed to confirm the effects of oxygen vacancies and the {111} crystal plane on CeO2 hollow nanospheres, leading to excellent NOR catalytic activity of CeO2 materials.
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