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High level ab initio, DFT, and RRKM calculations for the unimolecular decomposition reaction of ethylamine

机译:高水平的从头算,DFT和RRKM计算乙胺的单分子分解反应

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Mechanisms for the decomposition reaction of ethylamine, CH_3CH_2NH_2, were investigated using ab initio, DFT, and RRKM calculations. Optimized geometries of reactants, transition states, intermediates, and products were determined at HF, MP2, and B3LYP levels of theory using the 6-31G(d) and 6-31+G(d) basis sets. Single point energies were also determined at G3MP2B3 and G3B3 levels of theory. Thermo-dynamic properties, activation energies, enthalpies and Gibbs energies of activation were calculated for each reaction pathway investigated. Intrinsic reaction coordinate (IRC) analysis was performed to characterize the transition states on the potential energy surface. The conformational change and planarity of the ethylamine moiety along with the twist angle of the amino group about the CN axis are examined. Four pathways for the decomposition reaction of ethylamine were studied. All pathways involve a 1,2-elimination reaction and 1,3-proton shift to produce ethene, ethanimine, ethenamine, and methanimine. All pathways are single-step mechanisms. Elimination of the NH3 dominates the decomposition behavior up to 1200 K whereas after this temperature, secession of the C-N gradually holds more importance. While pathways signifying departures of NH_3 and NH_2 exhibit pressure-dependent behavior, branching ratios for these two channels are generally not influenced by variation in pressure higher than the atmospheric pressure.
机译:使用从头算,DFT和RRKM计算研究了乙胺CH_3CH_2NH_2的分解反应机理。使用6-31G(d)和6-31 + G(d)基集,在理论的HF,MP2和B3LYP水平下确定了反应物,过渡态,中间体和产物的最佳几何形状。在G3MP2B3和G3B3的理论水平上也确定了单点能量。对于所研究的每个反应路径,计算了活化的热力学性质,活化能,焓和吉布斯能。进行本征反应坐标(IRC)分析以表征势能表面上的过渡态。检查乙胺部分的构象变化和平面度以及氨基围绕CN轴的扭曲角。研究了乙胺分解反应的四个途径。所有途径均涉及1,2-消除反应和1,3-质子转移,以产生乙烯,乙胺,乙胺和甲胺。所有途径都是单步机制。直到1200 K,消除NH3才是主要的分解行为,而在此温度之后,C-N的分离逐渐变得更加重要。虽然表示NH_3和NH_2离开的路径显示出压力依赖性行为,但是这两个通道的分支比通常不受高于大气压的压力变化的影响。

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