催化作用
氧化物
碳酸盐
氧气
火星探测计划
化学物理
化学
金属
反应机理
多相催化
化学工程
无机化学
物理化学
天体生物学
物理
生物化学
有机化学
工程类
作者
Tian Tang,Lyumeng Ye,Yanrong Chen,Jingyu Xue,Xiaoqiang Shen,Jinfei Chen,Fiona Hammond Quarcoo,Vladislav Rac,Vesna Rakić,Xinbao Li,Xuesen Du
标识
DOI:10.1016/j.apcatb.2023.123368
摘要
The unique interface synergistic catalytic properties for metal oxide-supported catalysts have long been explored in several critical heterogeneous catalytic processes (e.g., CO oxidation reactions). However, interfacial synergistic catalysis is still a hitherto undescribed mechanism due to the lack of direct evidence at the atomic level. Thereinto, the CuOx-supported CeO2 (CuOx/CeO2) catalyst is a typical case. Herein, a combination study including representative theoretical calculations, in situ DRIFTS spectra and tailored molecular probe experiments supports a new carbonate-interface mediated Mars-van Krevelen (M−vK) mechanism for CO oxidation, i.e., CO molecules form carbonate intermediate species directly between spatial proximity (2.99 Å) double lattice oxygen sites with low oxygen vacancies formation energy (EformOv = 0.82 eV/0.83 eV) at the copper−ceria interface. The reaction energy barrier of this process is 0.32 eV, much lower than the 1.23 eV of the conventional M−vK mechanism. Besides, the spatial effect of double oxygen vacancies (Ov) generated by the depletion of intermediate carbonate species promotes the sustained and dynamic activation of O2, hence facilitating the efficient operation of the M−vK mechanism at low temperatures.
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