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Temperature and pressure dependences of tunneling rate constant: Density-functional theory potential-energy surface for H-atom transfer in the fluorene-acridine system

机译:隧穿速率常数的温度和压力依赖性:芴-ac体系中氢原子转移的密度泛函理论势能面

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Temperature and pressure dependences of rate constants for solid phase tunneling reactions are analytically considered within the framework of modified theory of radiationless transitions, taking into account the intermolecular and soft intramolecular promotive vibrations of reagents. This treatment allows us to describe theoretically the process of atomic tunneling and the effect of temperature on the potential barrier and reorganization of the reagents. The influence of external pressure appears in our treatment as a static reduction of widths and heights of the potential barrier with hydrostatic compression of the matrix, and also as an increase of frequencies of promotive vibrational modes owing to anharmonicity. The theoretical results are used to interpret experimental data concerning the effect of temperature and pressure on the hydrogen-atom tunneling in the fluorene-acridine reaction system. It has been shown that by taking into account the contributions from reorganization of the reagents, which statically reduce the tunneling barrier and are related to four types of promotive vibrations (translational, librational, and two low-frequency intramolecular modes at 95 and 238 cm(-1)), one can reproduce the experimental data available in the literature. The parameters of the reaction system required for this analysis are calculated from two-dimensional potential-energy surfaces generated at the DFT-B3LYP/6-31G(*) level. (c) 2005 American Institute of Physics.
机译:在修正的无辐射跃迁理论的框架内,考虑到试剂的分子间和分子内促进振动,在分析中考虑了固相隧穿反应速率常数的温度和压力依赖性。这种处理使我们能够在理论上描述原子隧穿的过程以及温度对势垒和试剂重组的影响。在我们的处理中,外部压力的影响表现为随着基质的静水压缩而使势垒宽度和高度的静态减小,以及由于非谐性导致的主动振动模式频率的增加。理论结果用于解释有关温度和压力对芴啶反应体系中氢原子隧穿的影响的实验数据。结果表明,考虑到试剂重组的贡献,它们静态地减少了隧穿势垒,并且与四种类型的激励振动(平移,自由和两种低频分子内模式在95和238 cm( -1)),可以重现文献中提供的实验数据。从DFT-B3LYP / 6-31G(*)级别生成的二维势能面计算此分析所需的反应系统参数。 (c)2005年美国物理研究所。

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