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探究氧化铈表面 CO 的吸附位。

Probing adsorption sites for CO on ceria.

机构信息

Chemistry Department, Brookhaven National Laboratory, Upton, NY 11973, USA.

出版信息

Phys Chem Chem Phys. 2013 Oct 14;15(38):15856-62. doi: 10.1039/c3cp52295d. Epub 2013 Aug 13.

Abstract

Ceria based catalysts show remarkable activity for CO conversion reactions such as CO oxidation and the water-gas shift reaction. The identification of adsorption sites on the catalyst surfaces is essential to understand the reaction mechanisms of these reactions, but the complexity of heterogeneous powder catalysts and the propensity of ceria to easily change oxidation states in the presence of small concentrations of either oxidizing or reducing agents make the process difficult. In this study, the adsorption of CO on CuOx/Cu(111) and CeOx/Cu(111) systems has been studied using infrared reflection absorption spectroscopy (IRRAS), X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations. IR peaks for the adsorbed CO on O/Cu(111) with only chemisorbed oxygen, well-ordered Cu2O/Cu(111) and disordered copper oxide [CuOx/Cu(111)] were observed at 2070-2072, 2097-2098 and 2101-2111 cm(-1), respectively. On CeOx/Cu(111) systems CO chemisorbs at 90 K only on Cu sites under ultra-high vacuum (UHV) conditions, whereas at elevated CO pressures and low temperatures adsorption of CO on Ce(3+) is observed, with a corresponding IR peak at 2162 cm(-1). These experimental results are further supported by DFT calculations, and help to unequivocally distinguish the presence of Ce(3+) cations on catalyst samples by using CO as a probe molecule.

摘要

基于铈的催化剂在 CO 转化反应(如 CO 氧化和水汽变换反应)中表现出显著的活性。要了解这些反应的反应机制,确定催化剂表面的吸附位是至关重要的,但由于多相粉末催化剂的复杂性以及氧化铈在存在少量氧化剂或还原剂时容易改变氧化态的倾向,使得这一过程变得困难。在这项研究中,使用红外反射吸收光谱(IRRAS)、X 射线光电子能谱(XPS)和密度泛函理论(DFT)计算研究了 CO 在 CuOx/Cu(111)和 CeOx/Cu(111)体系上的吸附。在仅含有化学吸附氧、有序的 Cu2O/Cu(111)和无序氧化铜[CuOx/Cu(111)]的 O/Cu(111)上吸附的 CO 的 IR 峰分别在 2070-2072、2097-2098 和 2101-2111 cm(-1)处观察到。在 CeOx/Cu(111)体系中,在超高真空(UHV)条件下,CO 仅在 Cu 位上在 90 K 下化学吸附,而在较高的 CO 压力和低温下,观察到 CO 在 Ce(3+)上的吸附,相应的 IR 峰在 2162 cm(-1)处。这些实验结果得到了 DFT 计算的进一步支持,并有助于通过使用 CO 作为探针分子来明确区分催化剂样品中 Ce(3+)阳离子的存在。

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