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首页> 外文期刊>ACS catalysis >Reducibility and Dispersion Influence the Activity in Silica-Supported Vanadium-Based Catalysts for the Oxidative Dehydrogenation of Propane: The Case of Sodium Decavanadate
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Reducibility and Dispersion Influence the Activity in Silica-Supported Vanadium-Based Catalysts for the Oxidative Dehydrogenation of Propane: The Case of Sodium Decavanadate

机译:减少和分散对二氧化硅载体的基于钒基催化剂的活性影响丙烷的氧化脱氢:甲磺酰胺钠的情况

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Calcined silica-supported sodium decavanadate (Na6V10O28/SiO2) is more active for the oxidative dehydrogenation of propane (ODP) than the thermodynamically stable alpha-polymorph of sodium metavanadate (alpha-NaVO3/SiO2) and the silica-bound, site-isolated terminal vanadium oxo [VO4]/SiO2 benchmark catalyst. Calcination of Na6V10O28/SiO2 in air at 600 degrees C leads to a mixture of Na1+xV3O8, interacting with the silica support, and the metastable polymorph of sodium metavanadate, beta-NaVO3. The formation of beta-NaVO3 at this temperature is unexpected as beta-NaVO, supported on silica and calcined at the same conditions transforms into alpha-NaVO3. At 450 degrees C (temperature of the ODP reaction) in an inert atmosphere, Na6V2O28/SiO2 transforms predominantly to the reduced phase alpha'-NaV2O5 that displays poor activity in ODP. However, the deactivated material recovers the high activity of calcined Na6V10O28/SiO2 after ca. 3 h time on stream (TOS) or after 1 h in air (450 degrees C). This observation is consistent with the proposed link between the high catalytic activity in ODP and the reducibility of a V phase as neither the catalytic performance nor characteristic Raman bands of alpha-NaVO3/SiO2 and [VO4]/SiO2 change significantly in an inert atmosphere at 450 degrees C. Vanadium K-edge operando X-ray absorption near-edge structure (XANES) and in situ Raman mapping show that the oxidation of alpha'-NaV2O5 to a mixture of Na1+xV3O8 and beta-NaVO3 occurs under ODP conditions within several minutes. In contrast, the initial activity recovers within hours (depending on the conditions), and it is explained mostly by slow redispersion of the Na1+xV3O8 phase on SiO2.
机译:煅烧的二氧化硅载钠二瓦纳酸钠(Na6V10O28 / SiO 2)对于丙烷(ODP)的氧化脱氢更活跃于甲烷酸钠(α-Navo3 / SiO 2)和二氧化硅结合,位点分离末端的热力学稳定的α-多晶型物钒氧代[VO4] / SiO2基准催化剂。在600℃下的空气中Na6V10O28 / SiO 2的煅烧导致Na1 + XV3O8的混合物,与二氧化硅载体相互作用,以及甲酰胺钠,β-Navo3的亚钠多晶型物。在该温度下形成β-navo3是意外的,如β-navo,在二氧化硅上负载并在相同条件下煅烧成α-navo3。在惰性气氛中,在450℃(ODP反应的温度)中,Na6V2O28 / SiO 2主要转化为在ODP中显示出差的活动的降低的相α-Nav2O5。然而,停用材料在CA之后恢复煅烧NA6V10O28 / SIO2的高活性。在空气中或在空气中1小时(450摄氏度)3小时。该观察结果与ODP中的高催化活性与V相之间的所提出的联系一致,并且V阶段的催化性能和α-Navo3 / SiO 2的特征拉曼带在惰性气氛中显着变化。 450℃。钒K-Edge Operando X射线吸收近边缘结构(Xanes)和原位拉曼测绘表明,α-Nav2O5氧化至Na1 + XV3O8和Beta-Navo3的混合物中发生在ODP条件下几分钟。相反,初始活性在小时内恢复(取决于条件),并且主要通过SiO 2上的Na1 + XV3O8相的缓慢重新分散来解释。

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