首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Oxidation of Nitric Oxide on Gas-Phase Cerium Oxide Clusters via Reactant Adsorption and Product Desorption Processes
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Oxidation of Nitric Oxide on Gas-Phase Cerium Oxide Clusters via Reactant Adsorption and Product Desorption Processes

机译:通过反应物吸附和产物解吸过程氧化气相氧化铈簇上的一氧化氮

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摘要

The reactivity of cerium oxide cluster cations, CenO2n+x+ (n = 2-9, x = -1 to +2), with NO was investigated using gas-phase temperature-programmed desorption (TPD) combined with mass spectrometry. Target clusters were prepared in the gas phase via the laser ablation of a cerium oxide rod in the presence of oxygen, which was diluted using helium as a carrier gas. NO adsorbed onto stoichiometric and oxygen-rich clusters of CenO2n+x+ (x = 0-2), forming CenO2n+x+ (NO)(+) (x = 0-2) species. Gasphase TPD was measured for the NO-adsorbed clusters, revealing that CenO2n (NO)(+) released NO2 at 600-900 K, forming CenO2n-1+. Therefore, the overall reaction was the oxidation of NO by the CenO2n+ clusters, which was explained in terms of a Langmuir Hinshelwood type reaction. An activation barrier existed between the initial complex (CenO2n(NO)(+)) and the final oxidation products (CenO2n-1+ + NO2). To determine the nature of the intermediates and the activation barrier, TPD was also performed on CenO2n-1(NO2)(+), which had been prepared through the adsorption of NO2 on CenO2n-1+ for comparison. The activation barrier was associated with the release of NO2 from the intermediate complex (CenO2n-1+-NO2 -> CenO2n-1+ + NO2) rather than the structural rearrangement that formed NO2 in the other intermediate complex (CenO2n+-NO -> CenO2n-1+-NO2).
机译:使用气相程序升温脱附(TPD)结合质谱法研究了氧化铈簇阳离子CenO2n + x +(n = 2-9,x = -1至+2)与NO的反应性。在氧气存在下,通过氧化铈棒的激光烧蚀,在气相中制备目标簇,使用氦气作为载气将其稀释。 NO吸附到CenO2n + x +(x = 0-2)的化学计量和富氧簇上,形成CenO2n + x +(NO)(+)(x = 0-2)物种。测量了气相TPD的NO吸附团簇,发现CenO2n(NO)(+)在600-900 K下释放NO2,形成CenO2n-1 +。因此,总体反应是CenO2n +团簇对NO的氧化,这可以用Langmuir Hinshelwood型反应来解释。初始配合物(CenO2n(NO)(+))和最终氧化产物(CenO2n-1 + + NO2)之间存在活化障碍。为了确定中间体的性质和活化屏障,还对CenO2n-1(NO2)(+)进行了TPD,CenO2n-1(NO2)(+)是通过将NO2吸附在CenO2n-1 +上制成的,以进行比较。活化障碍与从中间配合物(CenO2n-1 + -NO2-> CenO2n-1 + + NO2)释放NO2而不是与在另一个中间配合物(CenO2n + -NO-> CenO2n)中形成NO2的结构重排有关-1 + -NO2)。

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