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Enhancing the applicability of multicomponent time-dependent density functional theory

机译:提高多组分时间依赖性密度功能理论的适用性

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The multicomponent extension of time-dependent density functional theory (TDDFT) within the nuclear-electronic orbital (NEO) framework enables the calculation of both electronic and vibrational excitations simultaneously. In this NEO-TDDFT approach, all electrons and select nuclei, typically protons, are treated quantum mechanically on the same level. Herein, the dependence of the proton vibrational excitation energies on the nuclear and electronic basis sets is examined. Protonic basis sets that include f basis functions in conjunction with substantial electronic basis sets for the quantum hydrogen are found to produce accurate proton vibrational excitation energies that are mostly within similar to 30 cm(-1) of reference values for the molecules studied. The NEO-TDDFT approach is shown to be effective for open-shell as well as closed-shell systems. Additionally, an approach for computing and visualizing the nuclear transition densities associated with the proton vibrational excitations is implemented. These nuclear transition densities are important for characterizing the proton vibrational excitations and determining the spatial orientations of the corresponding vibrational modes. These capabilities are essential for a variety of applications, including the incorporation of anharmonic effects into molecular vibrational frequency calculations. Published under license by AIP Publishing.
机译:核电轨道(NEO)框架内的时间依赖密度泛函理论(TDDFT)的多组分延伸能够同时计算电子和振动激励。在这种Neo-TDDFT方法中,所有电子和选择核,通常是质子,在相同的水平上机械地处理量子。这里,研究了质子振动激励能量对核和电子基集合的依赖性。发现包括F基函数的质子基集合与量子氢的大量电子基集合,产生精确的质子振动激发能量,其主要是在所研究的分子的相似之处的相似之处。 Neo-TDDFT方法显示为开放式外壳以及闭合壳系统有效。另外,实施了用于计算和可视化与质子振动激发相关的核转变密度的方法。这些核过渡密度对于特征是质子振动激发并确定相应的振动模式的空间取向非常重要。这些功能对于各种应用是必不可少的,包括将Anharmonic Effect融入分子振动频率计算。通过AIP发布在许可证下发布。

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