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首页> 外文期刊>ACS catalysis >Ethanol Partial Oxidation over VOX/TiO2 Catalysts: The Role of Titania Surface Oxygen on Vanadia Reoxidation in the Mars-van Krevelen Mechanism
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Ethanol Partial Oxidation over VOX/TiO2 Catalysts: The Role of Titania Surface Oxygen on Vanadia Reoxidation in the Mars-van Krevelen Mechanism

机译:VOX / TiO2催化剂的乙醇部分氧化:TITANIA表面氧对MARS-VAN KREVELEN机制中的钒氧化物再氧化的作用

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摘要

The mechanism for the reoxidation step in the Marsvan Krevelen mechanism for ethanol partial oxidation over vanadia anchored on titanium oxide is examined. Kinetic parameters such as ethanol heat of adsorption, the activation energy for the rate-limiting step (alpha-hydrogen abstraction on the adsorbed ethoxide) were obtained while the energetics of the catalyst reoxidation step were explored. A comparison of the parameters obtained from kinetic analysis and the apparent activation energies reported in the literature indicated that a kinetic model that incorporates a catalyst reoxidation step, where molecular oxygen adsorbs into a titania vacancy, accurately predicted the kinetic parameters. In contrast, a model where molecular oxygen directly adsorbs on the reduced vanadia resulted in an underestimation of the ethanol heat of adsorption and activation energy for the a-hydrogen abstraction step. A computational analysis was implemented to elucidate a mechanistic pathway for reduced vanadia that incorporates oxygen adsorption on a titania vacancy. The results indicated that the vanadia reoxidation step involves surface oxygen migration from the titania surface to the reduced vanadia center. The quantification of oxygen uptake by the reduced catalyst validates the premise of this assumption: titania vacancies are created during ethanol partial oxidation and are active sites for oxygen adsorption.
机译:研究了在锚定氧化钛上的丙二醇磷酸乙醇部分氧化的Marsvan Krevelen机制中的再氧化步骤。在探索催化剂再氧化步骤的能量测量步骤的高能量,获得诸如乙醇吸附热的吸附热量的激活能量,例如催化剂再氧化乙氧胺上的α-氢取出)。从动力学分析中获得的参数的比较和文献中报道的表观活化能量表明,一种掺入催化剂再氧化步骤的动力学模型,其中分子氧吸附到二氧化钛空位中,精确地预测动力学参数。相反,一种模型,其中分子氧直接吸附在降低的丙酰胺上,导致对A-氢抽取步骤的吸附和活化能的乙醇热量进行了低估。实施了计算分析以阐明用于减少丙因族的机械途径,该钒掺入氧气吸附于二氧化钛空位上。结果表明,钒再氧化步骤涉及从二氧化钛表面迁移到降低的钒中心。降低催化剂的氧吸收量化验证了该假设的前提:在乙醇部分氧化期间产生的巨毛空缺,并且是用于氧气吸附的活性位点。

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