首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >SO2 Decomposition on Pt/CeO2(111) Model Catalysts: On the Reaction Mechanism and the Influence of H2 and CO
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SO2 Decomposition on Pt/CeO2(111) Model Catalysts: On the Reaction Mechanism and the Influence of H2 and CO

机译:Pt / CeO2(111)模型催化剂上的SO2分解:反应机理以及H2和CO的影响

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摘要

We have performed a synchrotron radiation photoelectron spectroscopy (SR-PES) study on the mechanism of SO2 decomposition on Pt/CeO2(111) model catalysts prepared on Cu(111). Resonant photoemission spectroscopy (RPES) was applied to monitor changes of the cerium oxidation state. Adsorption of SO2 at 150 K on Pt/CeO2(111)/Cu(111) yields surface sulfites (SO3~(2-)) on ceria and upright standing molecular SO2 (SO2~(st)) on Pt along with traces of atomic sulfur. Partial decomposition and desorption of the adsorbed species in the form of SO2 occur between 150 and 300 K. In this temperature region, slow accumulation of atomic sulfur is accompanied by reduction of the ceria support. Above 300 K, all surface species completely transform into atomic sulfur: thisprocess is accompanied by a strong reoxidation of ceria. As probed by CO adsorption, the majority of the atomic sulfur species is located on the surface of the Pt particles. Possible reaction mechanisms involving spillover of numerous sulfur-derived species are considered. Finally, reverse spillover of the sulfur from Pt to the ceria support and formation of a cerium oxysulfide phase occurs above 550 K. The spillover of atomic sulfur is readily promoted under reducing conditions, e.g., in the presence of coadsorbed hydrogen or CO.
机译:我们已经进行了同步加速器辐射光电子能谱(SR-PES),研究了在Cu(111)上制备的Pt / CeO2(111)模型催化剂上SO2分解的机理。共振光发射光谱法(RPES)用于监测铈氧化态的变化。在150 K下Pt / CeO2(111)/ Cu(111)上的SO2吸附会在二氧化铈上产生表面亚硫酸盐(SO3〜(2-)),在Pt上产生直立的分子SO2(SO2〜(st))以及痕量原子硫。在150至300 K之间发生了SO2形式的吸附物质的部分分解和解吸。在此温度范围内,原子硫的缓慢积累伴随着二氧化铈载体的减少。在300 K以上,所有表面物质都完全转化为原子硫:此过程伴随着二氧化铈的强烈再氧化。如通过CO吸附所探测到的,大多数原子硫物种位于Pt颗粒的表面上。考虑了可能的反应机理,其中涉及许多硫衍生物种的溢出。最后,在550 K以上发生硫从Pt向二氧化铈载体的反向溢出和氧氧化铈相的形成。在还原条件下,例如在共吸附的氢或CO的存在下,容易促进原子硫的溢出。

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