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Molecular Dynamics Simulations of Methanol to Olefin Reactions in HZSM-5 Zeolite Using a ReaxFF Force Field

机译:使用ReaxFF力场模拟HZSM-5沸石中甲醇与烯烃反应的分子动力学模拟

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摘要

A ReaxFF force field has been extended and used in the present work to simulate methanol to olefin (MTO) reactions in H-ZSM-5 zeolite. By explicitly considering multibody interactions and thermodynamic conditions, the initial reaction network of MTO in acidic zeolite has been obtained. New reaction mechanisms are proposed based on the simulations. For the activation of methanol, a less possible but very important CH3 radical mechanism is identified in addition to the commonly accepted methoxyl mechanism. The commonly accepted chain-growth mechanism, in which ethene interacts with methyloxide, has been observed. However, it is a small contribution to the total production. The more popular route for the chain growth is attributed to the presence of deprotonated Bronsted sites, which are produced via the activation of methanol molecules. Therefore, the hydrocarbon pool is working with the methanol molecules involved. With the hydrocarbon pool, the chain growth is significantly accelerated. Considering the collision probability, the late determining step for MTO is not the activation of methanol as suggested by static calculations but the C-C chain formation. The simulation data are consistent with previously reported experimental observations,
机译:ReaxFF力场已经扩展,并在本工作中用于模拟H-ZSM-5沸石中的甲醇转化为烯烃(MTO)反应。通过明确考虑多体相互作用和热力学条件,获得了MTO在酸性沸石中的初始反应网络。在模拟的基础上提出了新的反应机理。对于甲醇的活化,除了公认的甲氧基机理外,还确定了一种不太可能但非常重要的CH3自由基机理。已经观察到乙烯与甲氧基相互作用的公认的链增长机理。但是,它对总产量的贡献很小。链增长的更流行途径归因于去质子化的布朗斯台德位点的存在,这是通过甲醇分子的活化而产生的。因此,碳氢化合物池正在与涉及的甲醇分子一起工作。有了碳氢化合物库,链增长显着加快。考虑到碰撞可能性,MTO的较晚确定步骤不是静态计算所建议的甲醇活化,而是C-C链形成。模拟数据与先前报道的实验观察结果一致,

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