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Effect of Coadsorbed Water on Deep Oxidation Mechanisms: Temperature-Programmed Reactions of Benzene and Hydroxyl on the Pt(111) Surface

机译:共吸附水对深度氧化机理的影响:苯和羟基在pt(111)表面的程序升温反应

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摘要

The deep oxidation of benzene by preadsorbed hydroxyl on the Pt(111) surface has been characterized using temperature-programmed reaction spectroscopy. A mechanism for benzene oxidation in the presence of coadsorbed water has been developed based on these experiments. Reaction-limited carbon dioxide and water are formed over the temperature range 330–530 K, indicating oxydehydrogenation and skeletal oxidation are occurring over this temperature range. Oxidation of benzene has been compared on the oxygen-covered Pt(111) surface with and without coadsorbed water. With preadsorbed hydroxyl, the yield of water at low-temperatures is increased, and the yield of carbon dioxide is increased. The temperature ranges for carbon dioxide and water formation above 300 K are increased by 30 K when water is coadsorbed with atomic oxygen to form hydroxyl. These results clearly suggest that hydroxyl enhances oxydehydrogenation below 300 K, which results in the formation of different dehydrogenated intermediates with increased activation energy for oxidation during the reaction. Taken together these kinetic and mechanistic results provide a clear description of the reactivity of hydroxyl during benzene deep oxidation on the Pt(111) surface.
机译:Pt(111)表面上的预吸附羟基对苯的深度氧化已使用程序升温反应光谱进行了表征。基于这些实验,已经开发了在共吸附水存在下苯氧化的机理。在330-530 K的温度范围内会生成反应受限的二氧化碳和水,这表明在该温度范围内发生了氧化脱氢和骨架氧化。在有和没有共吸附水的情况下,已经比较了在氧气覆盖的Pt(111)表面上苯的氧化程度。使用预吸附的羟基,可以提高低温下的水收率,并提高二氧化碳的收率。当水与原子氧共吸附形成羟基时,二氧化碳和水的生成温度范围超过300 K,温度范围增加30K。这些结果清楚地表明,羟基在低于300 K时会增强氧化脱氢作用,从而导致形成不同的脱氢中间体,并增加反应过程中氧化的活化能。这些动力学和机理的结果加在一起,清楚地描述了Pt(111)表面上苯深度氧化过程中羟基的反应性。

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