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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >In Situ Spectroscopic Investigation of Low-Temperature Oxidation of Methane over Alumina-Supported Platinum during Periodic Operation
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In Situ Spectroscopic Investigation of Low-Temperature Oxidation of Methane over Alumina-Supported Platinum during Periodic Operation

机译:周期性操作中氧化铝在载铂的铂上低温氧化甲烷的原位光谱研究

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Methane oxidation over Pt/Al2O3 at transient inlet-gas conditions was studied in situ using synchronous energy dispersive X-ray absorption spectroscopy, Fourier transform infrared spectroscopy, and mass spectrometry. The employed combination of experimental techniques allows for simultaneous analysis of the electronic state of platinum, surface coverage of reaction intermediates/products, and catalytic activity/selectivity, respectively. By cycling of the feed gas composition between net-oxidizing and net-reducing conditions, the activity for methane oxidation can be increased as compared to continuous net-oxidizing conditions. Using the white-line area of time-resolved X-ray absorption near-edge structure spectra, a quantitative estimation of the surface O/Pt ratio indicates the formation of an inhomogeneous surface oxide on the platinum crystallites during reaction. The obtained temporary high activity can be explained through Langmuir-Hinshelwood kinetics and may result either from the formation of a partially oxidized platinum surface that is more effective for methane dissociation or, more likely, from a period with more reactive chemisorbed oxygen prior to oxide formation.
机译:使用同步能量色散X射线吸收光谱,傅立叶变换红外光谱和质谱,在瞬态进气条件下原位研究了Pt / Al2O3上的甲烷氧化。采用的实验技术组合可以分别同时分析铂的电子状态,反应中间体/产物的表面覆盖率和催化活性/选择性。与连续的净氧化条件相比,通过进料气体组合物在净氧化和净还原条件之间循环,可以提高甲烷氧化的活性。使用时间分辨的X射线吸收近边缘结构光谱的白线区域,对表面O / Pt比的定量估计表明反应过程中在铂微晶上形成了不均匀的表面氧化物。可以通过Langmuir-Hinshelwood动力学解释所获得的暂时的高活性,这可能是由于形成了对甲烷解离更有效的部分氧化的铂表面,或者更可能是由于在氧化物形成之前,化学吸附的氧具有更高的反应性。

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