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An ab-initio study of vibration dynamics in hydrogen-bonded compounds and intramolecular energy flow in the HDO molecule.

机译:从头开始研究氢键化合物中的振动动力学和HDO分子中的分子内能流。

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Several new techniques were developed and applied to investigate various non-trivial aspects of vibrational motion. In particular, a novel strategy for accurate determination of vibrational energy levels in the presence of intramolecular hydrogen bonds was proposed. A small subset of convenient internal coordinates was chosen to represent a vibrational mode of interest, while the interdependence among all other coordinates was encoded in the g-matrix elements which appear in the kinetic energy operator. Individual g-matrix elements were modeled by series of shifted Gaussian functions, a newly proposed functional form that assured physically correct behavior for the entire domain of internal coordinates. The success in reproducing experimentally observed frequencies should be partly attributed to a new basis set of modified Hermite-type functions which has been introduced in this work and employed in all presented vibrational energy calculations.; A novel functional representation for potential energy surfaces (PES) was also proposed in this work. The new representation, consisting of products of shifted Gaussians and shifted Morse functions, reproduces all local features near the bottom of the well and also possesses correct asympototic behavior. Determination of the functional parameters for the PES fits involved a simultaneous optimization of many linear and nonlinear parameters, and required a development of an efficient minimization routine. The new routine consisted of an iterative procedure, which treated sets of linear and nonlinear parameters separately and in successive order in each iteration.; The above-mentioned set of developed tools was applied to study the intramolecular vibrational energy redistribution (IVR) in HDO molecule. The time-evolution of the O–H stretching local mode was studied by a time-propagation method based on matrix representation of the evolution operator. The energy transfer among the local modes was modeled by non-diagonal g-tensor terms in the kinetic energy operator and by three-dimensional potential energy operator. The results indicate that the O–H stretching local modes must be substantially long-lived within the chosen model.; A new recursive programming technique combined with a very effective passing by reference methodology was developed and used in this study to implement the time-propagation routine. The introduced concept of a shared compound pointer in Fortran 90 automatically accounts for the changing sizes of all data structures, while working with only a single parameter, a pointer to a parent object.
机译:开发了几种新技术,并将其应用于研究振动运动的各个重要方面。特别是,提出了一种新的策略,用于在分子内氢键存在的情况下精确确定振动能级。选择了方便的内部坐标的一小部分来表示感兴趣的振动模式,而所有其他坐标之间的相互依存关系则以动能算子中出现的 g -矩阵元素进行编码。单个 g -矩阵元素通过一系列移位的高斯函数建模,这是一种新提出的函数形式,可确保内部坐标整个域的物理正确行为。再现实验观察到的频率的成功应部分归功于已修改的Hermite型函数的新基础集,该函数已在这项工作中引入并用于所有现有的振动能量计算中。在这项工作中还提出了一种新的势能面(PES)的功能表示。新的表示形式由偏移的高斯函数和摩尔斯函数的乘积组成,可重现井底附近的所有局部特征,并具有正确的渐近性。确定PES的功能参数需要同时优化许多线性和非线性参数,并且需要开发有效的最小化例程。新的例程包括一个迭代过程,该过程分别处理线性和非线性参数集,并在每次迭代中依次处理。将上述开发工具集用于研究HDO分子内的分子内振动能重新分布(IVR)。通过基于演化算子矩阵表示的时间传播方法研究了O–H拉伸局部模式的时间演化。通过动能算子和三维势能算子中的非对角线 g 张量项对局部模式之间的能量传递进行建模。结果表明,O–H拉伸局部模态必须在选择的模型中具有较长的寿命。开发了一种新的递归编程技术,结合了非常有效的按引用传递方法,并将其用于本研究中以实现时间传播例程。 Fortran 90中引入的共享复合指针概念自动考虑所有数据结构的大小变化,同时仅使用单个参数即指向父对象的指针。

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