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Updated: Jun 20, 2026

Chemical Precipitation Method for the Synthesis of Nb2O5 Modified Bulk Nickel Catalysts with High Specific Surface Area
Published on: February 19, 2018
Activation of Surface Lattice Oxygen by Ni-Doped CeO2 To Enhance CO-SCR Reactivity and Antioxidant Performance
Mingtao Yang1, Shuhao Li2, Zihang Liu2
1School of Chemical Engineering and Technology, Tianjin Key Laboratory of Clean Energy and Pollutant Control, Hebei University of Technology, Tianjin 300401, China.
Abstract:
Selective catalytic reduction of nitric oxide using carbon monoxide from industrial flue gas is considered an economical and environmentally friendly method of denitrification (CO-SCR). Ni-doped CeO2 catalysts exhibited high denitrification performance, where the distribution and number of oxygen vacancies were the key factors affecting the performance. In this paper, Ni-doped CeO2 (1 1 1) surface CO reduction of NO has been thoroughly investigated and its reactivity has been evaluated by using density functional theory, electronic structure analysis, and transition state theory. The negative oxygen vacancy formation energy of the Ni-CeO2 (1 1 1) surface is manifested by the easier activation of the surface lattice oxygen. The Ni-CeO2 (1 1 1)-O1VO5V structure the reaction path that generates N2 via the ONCO intermediate has the lowest energy barrier and is the best reaction path. When oxygen is present, not only does it compete with NO for the active site, but the adsorption of O2 at other sites also changes the position of already adsorbed NO. It also destroys ONNO and ONCO intermediates, thus blocking or hindering subsequent reactions. When trace amounts of oxygen are present in the reaction system, only the trioxide vacancy CeO2 (1 1 1)-O1VO5VO7v structure via the N2O2 intermediate to generate the N2 reaction pathway can go through. However, the reactivity was reduced. In this study, the intrinsic mechanism of Ni doped CeO2 catalysts with high denitrification performance was deeply elucidated at the atomic level, and the effect of O2 on the reaction process was also revealed.

