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1,1,1-三氟乙烷的离解是一个本征RRKM过程:经典轨迹与成功的主方程建模。

Dissociation of 1,1,1-trifluoroethane is an intrinsic RRKM process: classical trajectories and successful master equation modeling.

作者信息

Matsugi Akira

机构信息

National Institute of Advanced Industrial Science and Technology (AIST) , 16-1 Onogawa, Tsukuba, Ibaraki 305-8569, Japan.

出版信息

J Phys Chem A. 2015 Mar 12;119(10):1846-58. doi: 10.1021/acs.jpca.5b00796. Epub 2015 Feb 18.

Abstract

Rate constants for thermal decomposition of 1,1,1-trifluoroethane (CH3CF3) in the high-temperature falloff region were previously reported to have an unusual pressure dependence that could not be explained by Rice-Ramsperger-Kassel-Marcus (RRKM) theory in combination with unimolecular master equation analysis. This study investigates the dynamics of the CH3CF3 dissociation and the energy transfer of CH3CF3 in collisions with Ar and Kr by classical trajectory calculations on a global potential energy surface constructed from a large number of quantum chemical calculations. The simulations showed that the ensemble-averaged CH3CF3 populations decay with single exponential profiles that have rate constants close to those predicted by RRKM theory, indicating that the microcanonical ensemble is maintained during decomposition. The trajectory calculation also indicated that a significant portion of the HF product is formed in its vibrationally excited state. Such observation motivated this study to correct some of the reported rate constants for the CH3CF3 decomposition. With the correction applied, the experimental rate constants were well reproduced by the RRKM/master equation calculation using the collisional energy transfer parameters that were also obtained from trajectory calculations. Overall, the title reaction is demonstrated to be another successful example of RRKM/master equation modeling.

摘要

先前报道,1,1,1-三氟乙烷(CH3CF3)在高温衰减区的热分解速率常数具有异常的压力依赖性,这无法用赖斯-拉姆施泰格-卡塞尔-马库斯(RRKM)理论结合单分子主方程分析来解释。本研究通过在由大量量子化学计算构建的全局势能面上进行经典轨迹计算,研究了CH3CF3分解的动力学以及CH3CF3与Ar和Kr碰撞时的能量转移。模拟结果表明,系综平均的CH3CF3布居以单指数形式衰减,其速率常数接近RRKM理论预测的值,这表明在分解过程中维持了微正则系综。轨迹计算还表明,很大一部分HF产物是以其振动激发态形成的。这样的观察促使本研究对报道的一些CH3CF3分解速率常数进行修正。应用该修正后,使用同样从轨迹计算中获得的碰撞能量转移参数,通过RRKM/主方程计算很好地再现了实验速率常数。总体而言,本反应被证明是RRKM/主方程建模的又一个成功实例。

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