Wang Yuhang, Jiang Qike, Xu Liangliang, Han Zhong-Kang, Guo Song, Li Gao, Baiker Alfons
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
ACS Appl Mater Interfaces. 2021 Dec 29;13(51):61078-61087. doi: 10.1021/acsami.1c17807. Epub 2021 Dec 14.
Various copper-ceria-based composites have attracted attention as efficient catalysts for the reduction of NO with CO. In this comparative study, we have examined the catalytic potential of different configurations of copper oxide-ceria catalysts, including catalysts based on a copper-ceria solid solution, copper oxide particles supported on ceria, and ball-milled copper oxide-ceria. The structurally different interfaces between the constituents of these catalysts afforded very different catalytic performances. The solid solution catalyst outperformed the corresponding ceria-supported and ball-milled CuO-CeO catalysts. The copper cations incorporated into the ceria lattice strongly improved the activity, N selectivity, and water vapor tolerance compared to the other catalyst configurations. The experimental observations are supported by first-principles density functional theory (DFT) studies of the reaction pathway, which indicate that the incorporation of Cu cations into the ceria matrix lowers the energy required for activating the lattice oxygen, thereby enhancing the formation and healing of oxygen vacancies, and thus promoting NO reduction with CO.
各种基于铜铈的复合材料作为用CO还原NO的高效催化剂受到了关注。在这项比较研究中,我们研究了不同结构的氧化铜-二氧化铈催化剂的催化潜力,包括基于铜铈固溶体的催化剂、负载在二氧化铈上的氧化铜颗粒以及球磨的氧化铜-二氧化铈。这些催化剂成分之间结构不同的界面提供了非常不同的催化性能。固溶体催化剂的性能优于相应的二氧化铈负载型和球磨的CuO-CeO催化剂。与其他催化剂结构相比,掺入二氧化铈晶格中的铜阳离子极大地提高了活性、N选择性和耐水蒸气性。反应途径的第一性原理密度泛函理论(DFT)研究支持了实验观察结果,该研究表明将Cu阳离子掺入二氧化铈基体中降低了激活晶格氧所需的能量,从而增强了氧空位的形成和修复,进而促进了用CO还原NO的反应。