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Total oxidation of propene at low temperature over Co3O4-CeO2 mixed oxides: Role of surface oxygen vacancies and bulk oxygen mobility in the catalytic activity

机译:低温下Co3O4-CeO2混合氧化物上丙烯的总氧化:表面氧空位和整体氧迁移率在催化活性中的作用

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摘要

Co3O4, CeO2 and Co3O4–CeO2 mixed oxides with Co/Ce nominal atomic ratio 0.1:5, prepared by coprecipitation method with sodium carbonate, were tested in the oxidation of propene under lean condition and the catalyst stability was checked by performing three consecutive heating–cooling cycles. Characterization of the textural properties were performed by surface area measurement BET, X-ray diffraction (XRD) and scanning electron microscopy (SEM) measurements. Among the Co3O4–CeO2 mixed oxides, Co3O4 (30 wt%)–CeO2 (70 wt%) gives the best activity attaining full propene conversion at 250 °C. This sample is characterized by the presence of Co3O4 particles well dispersed and in good contact with ceria according to BET and XRD data and as evidenced by SEM micrographs. Oxygen temperature-programmed desorption (O2 -TPD) and C3H6 -temperature-programmed reduction (C3H6-TPR) experiments were carried out in order to study the surface and bulk oxygen mobility and to correlate it to the activity. At temperature around 200 °C, O2-TPD experiments showed the desorption of mobile surface oxygen species for the most active samples, Co3O4 and Co3O4 (30 wt%)– CeO2 (70 wt%).udC3H6-TPR experiments for both of the oxides also evidenced a high reactivity at low temperature,udespecially, for Co3O4 (30 wt%)– CeO2 (70 wt%) giving at 345 °C an intense peak of CO2 formation.udConversely, the ceria sample showed by C3H6-TPR much less pronounced oxygen bulk mobility, starting to react with propene above 500 °C and forming only CO. In this case, the catalytic activity of ceria was explained in terms of formation of surface oxygen vacancies which are relevant to the propene oxidation in presence of gaseous oxygen.
机译:通过碳酸钠共沉淀法制备的Co / Ce标称原子比为0.1:5的Co3O4,CeO2和Co3O4–CeO2混合氧化物在稀薄条件下在丙烯的氧化中进行了测试,并通过连续三次加热检查了催化剂的稳定性–冷却循环。通过表面积测量BET,X射线衍射(XRD)和扫描电子显微镜(SEM)测量来进行质地特性的表征。在Co3O4–CeO2混合氧化物中,Co3O4(30 wt%)– CeO2(70 wt%)具有最佳的活性,可在250°C时实现丙烯完全转化。该样品的特征在于,根据BET和XRD数据并通过SEM显微照片证明,存在的Co3O4颗粒分散得很好,并与二氧化铈良好接触。进行氧程序升温脱附(O2-TPD)和C3H6-程序升温还原(C3H6-TPR)实验,以研究表面和整体的氧迁移率并将其与活性关联。在大约200°C的温度下,O2-TPD实验表明,对于活性最高的样品Co3O4和Co3O4(30 wt%)– CeO2(70 wt%),可移动表面氧种类的解吸。 udC3H6-TPR实验对于两种样品氧化物还证明在低温下具有较高的反应活性,特别是对于Co3O4(30 wt%)– CeO2(70 wt%)在345°C时会产生强烈的CO2形成峰。 ud相反,C3H6-TPR显示出二氧化铈样品氧的体积迁移率不那么明显,在高于500°C的温度下开始与丙烯反应并仅形成CO。在这种情况下,氧化铈的催化活性是根据表面氧空位的形成来解释的,该空位与丙烯存在下的丙烯氧化有关。气态氧气。

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