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首页> 外文期刊>The Journal of Chemical Physics >A QUANTUM DYNAMICAL STUDY OF CH OVERTONES IN FLUOROFORM .1. A NINE-DIMENSIONAL AB INITIO SURFACE, VIBRATIONAL SPECTRA AND DYNAMICS
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A QUANTUM DYNAMICAL STUDY OF CH OVERTONES IN FLUOROFORM .1. A NINE-DIMENSIONAL AB INITIO SURFACE, VIBRATIONAL SPECTRA AND DYNAMICS

机译:氯仿中CH原子的量子动力学研究1。九维AB初始表面,振动谱和动力学

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In this series, the characteristics of intramolecular vibrational-energy redistribution (IVR) present in the CH overtones of CHF3 are investigated. Particular attention is given to the multiple time scales and thus mechanisms present in the IVR dynamics. In Part I, a 9-dimensional ab initio potential energy surface is developed to adequately account for the vibrational couplings of all modes. Furthermore, all-mode vibrational state calculations, of large-primitive space dimension, are performed using a recently developed wave operator sorting algorithm in tandem with the recursive residue generation method. All fundamentals, first overtones, and bimodal combination states with up to 3 quanta are presented. Also, the A(1) and E-symmetry CH polyads are determined through the second overtone. Equilibrium geometry, rotational constants, and vibrational properties agree quantitatively with experiment in most cases. The error is systematic in origin and largely due to the error in the ab initio harmonic frequencies. New vibrational constants and resonance interactions are reported for the background modes. In contrast to the prominent CH stretch-bend Fermi resonance structure, responsible for ultrafast (t<50 fs) energy transfer, the CH polyads also exhibit vibrational fine structure of order I to 10 cm(-1) due to background-mode coupling. This secondary coupling results in IVR on the picosecond time scale. (C) 1995 American Institute of Physics. [References: 84]
机译:在这个系列中,研究了CHF3的CH泛音中存在的分子内振动能重新分布(IVR)的特性。特别要注意多个时间尺度,因此,IVR动态中存在机制。在第一部分中,开发了一个9维从头开始的势能表面,以充分考虑所有模式的振动耦合。此外,使用最近开发的波算子排序算法和递归残差生成方法,可以执行大原始空间尺寸的全模式振动状态计算。提出了所有基本原理,第一泛音和最多3个量子的双峰组合状态。同样,通过第二个泛音确定A(1)和E-对称CH多联体。在大多数情况下,平衡几何形状,旋转常数和振动特性与实验在数量上一致。该误差在源头上是系统性的,并且在很大程度上是由于从头算谐波频率的误差。报告了背景模式的新振动常数和共振相互作用。与负责超快(t <50 fs)能量转移的突出CH弯曲弯曲费米共振结构相反,由于背景模式耦合,CH polyads还表现出I级至10 cm(-1)的精细振动结构。这种次级耦合导致皮秒级的IVR。 (C)1995年美国物理研究所。 [参考:84]

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