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Pits confined in ultrathin cerium(IV) oxide for studying catalytic centers in carbon monoxide oxidation

机译:限制在超细氧化铈(IV)中的坑用于研究一氧化碳氧化的催化中心

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Finding ideal material models for studying the role of catalytic active sites remains a great challenge. Here we propose pits confined in an atomically thin sheet as a platform to evaluate carbon monoxide catalytic oxidation at various sites. The artificial three-atomic-layer thin cerium(IV) oxide sheet with approximately 20% pits occupancy possesses abundant pit-surrounding cerium sites having average coordination numbers of 4.6 as revealed by X-ray absorption spectroscopy. Density-functional calculations disclose that the four- and five-fold coordinated pit-surrounding cerium sites assume their respective role in carbon monoxide adsorption and oxygen activation, which lowers the activation barrier and avoids catalytic poisoning. Moreover, the presence of coordination-unsaturated cerium sites increases the carrier density and facilitates carbon monoxide diffusion along the two-dimensional conducting channels of surface pits. The atomically thin sheet with surface-confined pits exhibits lower apparent activation energy than the bulk material (61.7 versus 122.9?kJ?mol?1), leading to reduced conversion temperature and enhanced carbon monoxide catalytic ability.
机译:寻找理想的材料模型来研究催化活性部位的作用仍然是一个巨大的挑战。在这里,我们提出了限制在原子薄板中的凹坑作为平台,以评估一氧化碳在各个位置的催化氧化作用。 X射线吸收光谱法显示,具有约20%的凹坑占有率的人造三原子层薄氧化铈(IV)板具有丰富的凹坑周围铈位点,其平均配位数为4.6。密度泛函计算表明,四倍和五倍的协同坑周围铈位点在一氧化碳吸附和氧活化中起各自的作用,从而降低了活化势垒并避免了催化中毒。而且,配位不饱和铈位点的存在增加了载流子密度并促进了一氧化碳沿表面凹坑的二维导电通道扩散。具有表面受限凹坑的原子薄板表现出比本体材料低的表观活化能(61.7比122.9?kJ?mol ?1 ),从而降低了转化温度并增强了一氧化碳的催化能力。

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