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Selective Autooxidation of Ethanol over Titania-Supported Molybdenum Oxide Catalysts: Structure and Reactivity

机译:二氧化钛负载的氧化钼催化剂上乙醇的选择性自氧化:结构和反应性

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摘要

We study the selective catalytic oxidation of ethanol with air as a sustainable alternative route to acetaldehyde. The reaction is catalysed by molybdenum oxide supported on titania, in a flow reactor under ambient pressure. High selectivity to acetaldehyde (70%–89%, depending on the Mo loading) is obtained at 150 °C. Subsequently, we investigate the structure/performance relationship for various molybdenum oxide species using a combination of techniques including diffuse reflectance UV-visible, infrared, X-ray photoelectron spectroscopies, X-ray diffraction and temperature programmed reduction. As their surface density increases, the monomeric molybdenum oxide species undergo two-dimensional and three-dimensional oligomerisation. This results in polymolybdates and molybdenum oxide crystallites. Importantly, the ethanol oxidation rate depends not only on the overall molybdenum loading and dispersion, but also on the type of molybdenum oxide species prevalent at each surface density and on the domain size. As the molybdenum oxide oligomerisation increases, electron delocalisation becomes easier. This lowers the absorption edge energy and increases the reaction rate.
机译:我们研究了乙醇与空气的选择性催化氧化,作为乙醛的可持续替代路线。该反应在环境压力下在流动反应器中由负载在二氧化钛上的氧化钼催化。在150°C时可获得对乙醛的高选择性(70%–89%,取决于Mo的负载量)。随后,我们使用多种技术的组合来研究各种氧化钼的结构/性能关系,这些技术包括:漫反射,紫外可见,红外,X射线光电子能谱,X射线衍射和程序升温还原。随着它们的表面密度增加,单体氧化钼物质进行二维和三维低聚。这产生了多钼酸盐和氧化钼微晶。重要的是,乙醇的氧化速率不仅取决于总的钼负载量和分散度,还取决于在每个表面密度和区域尺寸上普遍存在的氧化钼种类的类型。随着氧化钼低聚的增加,电子离域变得更容易。这降低了吸收边缘能量并提高了反应速率。

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