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Post-transition state dynamics for propene ozonolysis: Intramolecular and unimolecular dynamics of molozonide

机译:丙烯臭氧分解反应的过渡态动力学:莫洛宗尼德的分子内和单分子动力学

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摘要

A direct chemical dynamics simulation, at the B3LYP/6-31G(d) level of theory, was used to study the post-transition state intramolecular and unimolecular dynamics for the O-3+propene reaction. Comparisons of B3LYP/6-31G(d) with CCSD(T)/cc-pVTZ and other levels of theory show that the former gives accurate structures and energies for the reaction's stationary points. The direct dynamics simulations are initiated at the anti and syn O-3+propene transition states (TSs) and the TS symmetries are preserved in forming the molozonide intermediates. Anti <-> syn molozonide isomerization has a very low barrier of 2-3 kcal/mol and its Rice-Ramsperger-Kassel-Marcus (RRKM) lifetime is 0.3 ps. However, the trajectory isomerization is slower and it is unclear whether this anti <-> syn equilibration is complete when the trajectories are terminated at 1.6 ps. The syn (anti) molozonides dissociate to CH3CHO+H2COO and H2CO+syn (anti) CH3CHOO. The kinetics for the latter reactions are in overall good agreement with RRKM theory, but there is a symmetry preserving non-RRKM dynamical constraint for the former. Dissociation of anti molozonide to CH3CHO+H2COO is enhanced and suppressed, respectively, for the trajectory ensembles initiated at the anti and syn O-3+propene TSs. The dissociation of syn molozonide to CH3CHO+H2COO may also be enhanced for trajectories initiated at the syn O-3+propene TS. At the time the trajectories are terminated at 1.6 ps, the ratio of the trajectory and RRKM values of the CH3CHO+H2COO product yield is 1.6 if the symmetries of the initiation and dissociation TSs are the same and 0.6 if their symmetries are different. There are coherences in the intramolecular energy flow, which depend on molozonide's symmetry (i.e., anti or syn). This symmetry related dynamics is not completely understood, but it is clearly related to the non-RRKM dynamics for anti <-> syn isomerization and anti molozonide dissociation to CH3CHO+H2COO. Correlations are found between the stretching motions of molozonide, indicative of nonchaotic and non-RRKM dynamics. The non-RRKM dynamics of molozonide dissociation partitions vibration energy to H2COO that is larger than statistical partitioning. Though the direct dynamics simulations are classical, better agreement is obtained using quantum instead of classical harmonic RRKM theory. This may result from the neglect of anharmonicity in the RRKM calculations, the non-RRKM dynamics of the classical trajectories, or a combination of these two effects. The trajectories suggest that the equilibrium syn/anti molozonide ratio is approximately 1.1-1.2 times larger than that predicted by the harmonic densities of state, indicating an anharmonic correction.
机译:在理论水平的B3LYP / 6-31G(d)上进行了直接化学动力学模拟,用于研究O-3 +丙烯反应的过渡态后分子内和单分子动力学。 B3LYP / 6-31G(d)与CCSD(T)/ cc-pVTZ和其他理论水平的比较表明,前者为反应的固定点提供了准确的结构和能量。直接动力学模拟是在反和顺式O-3 +丙烯过渡态(TSs)上开始的,并且在形成多洛宗尼德中间体的过程中保留了TS的对称性。反-顺式间苯二酚异构化具有2-3kcal / mol的非常低的势垒,并且其Rice-Ramsperger-Kassel-Marcus(RRKM)寿命为0.3ps。但是,轨迹异构化较慢,并且尚不清楚当轨迹以1.6 ps终止时,这种反式syn平衡是否完成。顺式(反)式三唑酮分解为CH3CHO + H2COO和H2CO +式(反式)CH3CHOO。后一种反应的动力学与RRKM理论总体上吻合良好,但是前者存在对称性,保留了非RRKM动力学约束。对于在反式和顺式O-3 +丙烯TS上引发的轨迹集合,分别增强和抑制了反三唑酮对CH3CHO + H2COO的解离。对于在顺式O-3 +丙烯TS处起始的轨迹,顺式间唑啉酮向CH 3 CHO + H 2 COO的离解也可以被增强。在轨迹以1.6 ps终止时,如果引发和解离TS的对称性相同,则CH3CHO + H2COO产物产量的轨迹与RRKM值之比为1.6,如果对称性不同则为0.6。分子内能量流具有相干性,这取决于莫洛宗尼德的对称性(即反或同)。这种与对称性有关的动力学尚未完全理解,但显然与非RRKM动力学有关,用于抗-syn异构化和抗吗啉酮分解为CH3CHO + H2COO。在莫洛宗尼德的拉伸运动之间发现相关性,表明非混沌和非RRKM动力学。莫洛宗尼德离解的非RRKM动力学将振动能量分配给H2COO,该能量大于统计分配。尽管直接动力学模拟是经典的,但使用量子代替经典的谐波RRKM理论可以获得更好的一致性。这可能是由于在RRKM计算中忽略了非谐性,经典轨迹的非RRKM动力学或这两种影响的组合。轨迹表明,平衡的合成/反聚硅氧烷的比率比状态的谐波密度所预测的比率大约1.1-1.2倍,表明非谐校正。

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