Xiaoli Liu, Zejiang Zhou, Jianbei Zhang, Jianjun Li, Yongjun Liu
Developing efficient nonprecious metal catalysts for NO reduction using CO under O 2 -containing conditions has always been the focus of attention. In this study, the asymmetric Mn–O v –Ce structure was constructed on the Mn–Ce catalyst via a coprecipitation strategy. The optimized Mn 0.2 Ce 0.8 O 2 catalyst exhibited superior catalytic performance, achieving 90% NO conversion and 95% N 2 selectivity at 260 °C under 5% O 2 . Characterizations and theoretical calculations revealed that the asymmetric Mn–O v –Ce configuration promoted electron delivery between Mn and neighboring Ce, facilitating the generation of dynamic O v . Furthermore, in situ DRIFTS and DFT calculations demonstrated that the incorporated Mn was favorable to a faster consumption of intermediates and the dynamic replenishment of O v on the CeO 2 surface, thus promoting the catalytic performance. This study provides an efficient scheme for designing high-efficiency performance Ce-based catalysts by tuning the electronic structure of CeO 2 for NO reduction by CO under the O 2 -containing conditions.