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低温下氧化铈表面一氧化碳氧化的协同效应

Synergistic Effects in Low-Temperature CO Oxidation on Cerium Oxide Surfaces.

作者信息

Lustemberg Pablo G, Yang Chengwu, Wang Yuemin, Ganduglia-Pirovano M Veronica, Wöll Christof

机构信息

Institute of Catalysis and Petrochemistry, CSIC, 28049 Madrid, Spain.

State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan 030001, China.

出版信息

J Am Chem Soc. 2025 Feb 26;147(8):6958-6965. doi: 10.1021/jacs.4c17658. Epub 2025 Feb 16.

Abstract

The mechanisms underlying the reaction between carbon monoxide (CO) and activated dioxygen on metal oxide substrates to produce CO remain poorly understood, particularly regarding the role of oxygen vacancies and the nature of the activated O adsorbate. In this study, we present experimental findings from infrared reflection-absorption spectroscopy on a model system of bulk monocrystalline CeO(111). Contrary to expectations, exposing the reduced surface to dioxygen (O) at 80 K does not yield activated oxygen species, such as superoxo or peroxo. Notably, in the presence of adsorbed CO, an unexpected low-temperature oxidation reaction occurs, consuming CO while oxidizing the CeO substrate. Since a direct reaction between impinging O and adsorbed CO is unlikely at these low temperatures, a novel mechanism is proposed. Extensive spin-polarized density functional theory (DFT) calculations reveal that oxygen vacancies play a critical role in this low-temperature CO oxidation. Initially located in the subsurface region (Vss), these vacancies migrate to the surface (Vs) via a concerted interaction with coadsorbed CO and O, leading to O activation and the formation of superoxo or peroxo species. Detailed analysis identifies key reaction intermediates and quantifies their adsorption energies and activation barriers. Our findings suggest that the peroxo-mediated pathway, with its lower activation barrier, is more favorable for CO oxidation at low temperatures compared to the carbonate pathway. This study provides valuable insights into the dynamic role of subsurface oxygen vacancies in the activation of gaseous O and CO oxidation mechanisms on CeO.

摘要

一氧化碳(CO)与金属氧化物衬底上的活性二氧反应生成CO的潜在机制仍知之甚少,特别是关于氧空位的作用以及活性O吸附质的性质。在本研究中,我们展示了对块状单晶CeO(111)模型系统进行红外反射吸收光谱的实验结果。与预期相反,在80 K下将还原表面暴露于二氧(O)不会产生活性氧物种,如超氧或过氧物种。值得注意的是,在存在吸附的CO时,会发生意想不到的低温氧化反应,消耗CO同时氧化CeO衬底。由于在这些低温下撞击的O与吸附的CO之间不太可能直接反应,因此提出了一种新机制。广泛的自旋极化密度泛函理论(DFT)计算表明,氧空位在这种低温CO氧化中起关键作用。这些空位最初位于次表面区域(Vss),通过与共吸附的CO和O的协同相互作用迁移到表面(Vs),导致O活化并形成超氧或过氧物种。详细分析确定了关键反应中间体并量化了它们的吸附能和活化能垒。我们的研究结果表明,与碳酸盐途径相比,过氧介导的途径具有较低的活化能垒,在低温下更有利于CO氧化。这项研究为次表面氧空位在气态O活化和CeO上的CO氧化机制中的动态作用提供了有价值的见解。

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