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DFT Study of Oxidation Reaction Paths for Ethanol Gasoline

机译:乙醇汽油氧化反应路径的DFT研究

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A DFT study of oxidation reaction for ethanol molecule and representative conventional molecule in gasoline was performed. At first, the homolytic dissociation energy of the different C-H bond in ethanol and hydrocarbon molecules was calculated and the C-H active sites most likely to be attacked by oxygen molecule were obtained. Then, the reaction barrier of oxidation initiation reaction for different molecules was compared to conclude that the barrier energy of ethanol molecule was lower than the conventional gasoline molecule. It was found that the lower energy gap between the HOMO orbital of ethanol molecule and the LUMO orbital of oxygen molecule was the driving force to the oxidation initiation reaction. In addition, the possible further reaction paths of ethanol free radical after dehydrogenation have also been investigated, which may generate acetaldehyde or acetic acid. The two reaction paths actually existed at the same time, though compared with the acetic acid steps, the reaction path was shorter for generating acetaldehyde. It was indicated that ethanol gasoline is more prone to oxidation than conventional gasoline, which leads to changes in its molecular composition and physical and chemical properties. We should pay attention to the oxidation stability of ethanol gasoline during its storage and use.
机译:进行了乙醇分子氧化反应的DFT研究及汽油中的常规分子。首先,计算了乙醇和烃分子中不同C-H键的均分离能量,得到最可能被氧分子攻击的C-H活性位点。然后,比较不同分子的氧化起始反应的反应屏障以得出结论,乙醇分子的阻挡能量低于常规汽油分子。结果发现,乙醇分子的同源轨道和氧气分子的Lumo轨道之间的较低能隙是对氧化引发反应的驱动力。此外,还研究了脱氢后的乙醇自由基的可能进一步的反应路径,也可以产生乙醛或乙酸。两种反应路径实际上同时存在,但与乙酸步骤相比,反应路径较短,用于产生乙醛。结果表明,乙醇汽油比常规汽油更容易氧化,这导致其分子组合物和物理和化学性质的变化。我们应注意在储存和使用过程中乙醇汽油的氧化稳定性。

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