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阐明表面羟基对CeO(100)表面上CO氧化的影响:一项DFT+U研究。

Clarifying the impacts of surface hydroxyls on CO oxidation on CeO(100) surfaces: a DFT+U study.

作者信息

Zhou Hui, Wang Dong, Gong Xue-Qing

机构信息

Key Laboratory for Advanced Materials, Centre for Computational Chemistry and Research Institute of Industrial Catalysis, School of Chemistry & Molecular Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, P. R. China.

出版信息

Phys Chem Chem Phys. 2020 Apr 15;22(15):7738-7746. doi: 10.1039/d0cp00204f.

Abstract

In heterogeneous catalysis, surface hydroxylation is well recognized as a common phenomenon under realistic reaction conditions. However, even for the versatile ceria-based materials that have attracted extensive studies, the results and causes of the hydroxyl effect on the catalytic reactivity remain largely elusive. In this work, density functional theory calculations corrected by on-site Coulomb interaction were conducted to clarify the CO oxidation pathways and also the impacts of surface hydroxyls on the catalytic performance at the two most stable reconstructions of CeO2(100). It is found that the presence of hydroxyl groups can boost the CO oxidation activity on the O-terminal surface but shows an opposite effect on the CeO4-terminal one. Further analyses regarding the structural distortions, electronic structures and orbital interactions reveal that the stretched Ce-O distance via in-plane hydrogen bonds and the electron redistributions induced by additional hydroxyl coordination are the main reasons for the different hydroxyl effects on the O- and CeO4-terminal surfaces. Our results not only uncover the dual-character of surface hydroxyls in heterogeneous catalysis, but they also underline the significance of moderate moisture in the reaction system that may endow ceria catalysts with both good thermostability and high catalytic activity.

摘要

在多相催化中,表面羟基化是现实反应条件下公认的常见现象。然而,即使对于已吸引广泛研究的通用氧化铈基材料,羟基对催化活性的影响结果及原因仍大多不明。在这项工作中,进行了经在位库仑相互作用校正的密度泛函理论计算,以阐明CO氧化途径以及表面羟基对CeO₂(100)两个最稳定重构表面催化性能的影响。研究发现,羟基的存在可提高O端表面的CO氧化活性,但对CeO₄端表面则呈现相反作用。关于结构畸变、电子结构和轨道相互作用的进一步分析表明,通过面内氢键拉伸的Ce - O距离以及额外羟基配位引起的电子重新分布是羟基对O端和CeO₄端表面产生不同影响的主要原因。我们的结果不仅揭示了多相催化中表面羟基的双重特性,还强调了反应体系中适度水分的重要性,其可能赋予氧化铈催化剂良好的热稳定性和高催化活性。

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