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首页> 外文期刊>Journal of Catalysis >Mechanism of nitrite hydrogenation over Pd/gamma-Al2O3 according a rigorous kinetic study
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Mechanism of nitrite hydrogenation over Pd/gamma-Al2O3 according a rigorous kinetic study

机译:亚硝酸盐氢化对Pd /γ-Al2O3的机制,根据严格的动力学研究

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The kinetics of nitrite hydrogenation over a Pd/gamma-Al2O3 catalyst was studied in a semi-batch slurry reactor at atmospheric pressure, in absence of any mass transfer effects. The hydrogen concentration and pH were kept constant during an experiment by continuously flowing a gas mixture containing hydrogen and 10% v/v CO2. The kinetic experiments were performed in an unprecedented wide concentration window of nitrite and hydrogen, revealing extreme variation in the apparent orders in hydrogen and nitrite, including reaction orders in hydrogen between 2 and 0.3, whereas the order in nitrite varied between 0.4 and -0.9. The rate of reaction is almost exclusively determined by the rate of formation of N-2 as the selectivity to ammonia is very low. A Langmuir-Hinshelwood mechanism with competitive adsorption is in operation. Several mechanistic pathways, as well as possible rate determining steps in those pathways, are discussed based on these observations in combination with prior knowledge on the mechanism in literature, resulting in a revised mechanistic scheme. It is concluded that formation of NH via dissociative hydrogenation of HNOH is the rate determining step, whereas molecular N-2 forms via reaction of NH with either NO, NOH or HNOH. N-N bond formation via dimerization of adsorbed NO or adsorbed N can be excluded. (C) 2020 The Authors. Published by Elsevier Inc.
机译:在大气压下在半批量淤浆反应器中研究了亚硝酸盐氢化的动力学,在大气压下,在没有任何传质效应的情况下在常压浆料反应器中研究。通过连续流动含有氢气和10%V / V CO 2的气体混合物,在实验期间氢浓度和pH保持恒定。在亚硝酸盐和氢的前所未有的宽浓度窗口中进行动力学实验,揭示了氢气和亚硝酸盐中表观命令的极端变化,包括2至0.3之间的反应序列,而亚硝酸盐的顺序在0.4和-0.9之间变化。反应速率几乎完全由N-2的形成速率确定,因为对氨的选择性非常低。具有竞争性吸附的Langmuir-Hinshelwood机制正在运行中。基于这些观察结果,讨论了几种机械途径以及可能的速率确定这些途径中的速率确定步骤,与文献中的机制的先验知识相结合,导致修订机制方案。得出结论,通过离缀氢化的HNOH形成NH是速率确定步骤,而通过NH的反应具有NO,NOH或HNOH的分子N-2形成。可以排除通过吸附的NO或吸附N的二聚化N-N键形成。 (c)2020作者。 elsevier公司发布

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