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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Dynamics Simulations and Statistical Modeling of Thermal Decomposition of 1-Ethyl-3-methylimidazolium Dicyanamide and 1-Ethyl-2,3-dimethylimidazolium Dicyanamide
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Dynamics Simulations and Statistical Modeling of Thermal Decomposition of 1-Ethyl-3-methylimidazolium Dicyanamide and 1-Ethyl-2,3-dimethylimidazolium Dicyanamide

机译:1-乙基-3-甲基咪唑双氰胺和1-乙基-2,3-二甲基咪唑双氰胺热分解的动力学模拟和统计模型

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Quasi-classical, direct dynamics trajectories were calculated at the B3LYP/6-31G* level of theory, in an attempt to understand decomposition mechanisms of 1-ethyl-3-methylimidazolium dicyanamide (EMIM(+)DCA(-)) and 1-ethyl-2,3-dimethylimidazolium dicyanamide (EMMIM(+)DCA(-)). The trajectories showed many dissociation paths for these two ionic liquids. Using trajectory results as a guide, structures of transition states and products that might be important for decomposition of these two compounds were determined using density functional theory calculations. Rice-Ramsperger-Kassel-Marcus (RRKM) theory was then utilized to examine properties of energized ionic liquids and to determine unimolecular rates for crossing various transition states. On the basis of RRKM modeling, initial decomposition paths for energized EMIM(+)DCA(-) correspond to formation of an N-heterocyclic carbene and acid pair via transfer of the C-2 proton of EMIM+ to DCA(-), and evolution of methylimidazole and ethylimidazole via SN2 alkyl abstraction by DCA(-). Similar decomposition paths were identified for energized EMMIM(+)DCA(-), except that the reactivity of C-2 of the imidazolium cation is significantly reduced upon substitution of a methyl group for a hydrogen atom at this position. The present work demonstrates that dynamics simulations, in conjunction with statistical modeling, are able to provide insight into decomposition mechanisms, kinetics, and dynamics for alkylimidazolium-based ionic liquids and to predict product branching ratios and how they vary with decomposition temperatures.
机译:在理论水平的B3LYP / 6-31G *下计算准古典的直接动力学轨迹,以期了解1-乙基-3-甲基咪唑鎓二氰胺(EMIM(+)DCA(-))和1-乙基-2,3-二甲基咪唑鎓二氰胺(EMMIM(+)DCA(-))。轨迹显示了这两种离子液体的许多解离路径。以轨迹结果为指导,使用密度泛函理论计算确定了可能对这两种化合物的分解很重要的过渡态和产物的结构。然后,利用莱斯-拉姆斯伯格-卡塞尔-马库斯(RRKM)理论来检查带电离子液体的性质,并确定跨各种过渡态的单分子速率。在RRKM模型的基础上,激发的EMIM(+)DCA(-)的初始分解路径对应于通过EMIM +的C-2质子向DCA(-)的转移形成N-杂环卡宾和酸对。 DCA(-)通过SN2烷基提取甲基咪唑和乙基咪唑对于通电的EMMIM(+)DCA(-),确定了相似的分解路径,不同之处在于,在该位置用氢原子取代甲基后,咪唑鎓阳离子的C-2反应性大大降低。本工作表明,动力学模拟与统计模型相结合,能够深入了解烷基咪唑基离子液体的分解机理,动力学和动力学,并预测产物的分支比以及它们随分解温度的变化。

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