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Kinetics of Decomposition Reactions of Acetic Acid Using DFT Approach

机译:用DFT方法进行乙酸分解反应的动力学

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Object:Excessive amount of oxygen content in unprocessed bio-oil deteriorates the quality of bio-oil which cannot be used in transportation vehicles without upgrading. Acetic acid (CH3COOH) is a vital component of ‘acids’ catalogue of unprocessed bio-oil produced from thermochemical conversions of most of biomass feedstocks such as switchgrass, alfalfa, etc. In this study, the decomposition reactions of acetic acid are carried out by two reaction pathways, i.e., decarboxylation and dehydration reactions. In addition, the reaction rates of decomposition are analysed in a wide range of temperatures, i.e., 298-900 K and at atmospheric pressure.Method:All quantum chemical calculations are performed in the gas phase using two DFT functionals, B3LYP and M06-2X, with 6-31g(d) basis set. The dehydration reaction of acetic acid proceeds directly from ground state structure of acetic acid, whereas, decarboxylation reaction forms an unstable intermediate of acetic acid to initiate the proton migration. Barrier height and kinetics study for both reactions and theories are different and illustrated in the reaction pathway and rate profiles, respectively. Furthermore, both levels of theories offer similar structural configurations but they differ slightly in energetics.Conclusion:The reaction kinetics of both reactions is linearly fitted and the Arrhenius equations corresponding to each decomposition mechanism are generated by fitting the data from line equation.
机译:目的:未经处理的生物油中的氧气含量过多会破坏生物油的质量,如果不进行升级就无法在运输车辆中使用。乙酸(CH3COOH)是未加工生物油的“酸”目录中的重要成分,该生物油是由大多数生物质原料(如柳枝,、苜蓿等)的热化学转化产生的。在此研究中,乙酸的分解反应通过两个反应途径,即脱羧和脱水反应。此外,在大范围的温度下(即298-900 K且在大气压下)分析了分解的反应速率。方法:所有的量子化学计算均在气相中使用两个DFT官能团B3LYP和M06-2X进行,以6-31g(d)为基础。乙酸的脱水反应直接从乙酸的基态结构进行,而脱羧反应形成乙酸的不稳定中间体以引发质子迁移。对于反应和理论的壁垒高度和动力学研究是不同的,分别在反应途径和速率曲线中进行了说明。此外,两种理论都提供相似的结构构型,但在能量学上略有不同。结论:两个反应的反应动力学都是线性拟合的,并且通过拟合线方程中的数据可以生成与每个分解机理相对应的Arrhenius方程。

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