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用半经典初始值表示分子动力学得到的核密度来表示分子的基态和激发振动本征态。

Representing molecular ground and excited vibrational eigenstates with nuclear densities obtained from semiclassical initial value representation molecular dynamics.

机构信息

Dipartimento di Chimica, Università degli Studi di Milano, Via C. Golgi 19, 20133 Milano, Italy.

出版信息

J Chem Phys. 2020 Dec 7;153(21):214117. doi: 10.1063/5.0031391.

DOI:10.1063/5.0031391
PMID:33291909
Abstract

We present in detail and validate an effective Monte Carlo approach for the calculation of the nuclear vibrational densities via integration of molecular eigenfunctions that we have preliminary employed to calculate the densities of the ground and the excited OH stretch vibrational states in the protonated glycine molecule [Aieta et al., Nat Commun 11, 4348 (2020)]. Here, we first validate and discuss in detail the features of the method on a benchmark water molecule. Then, we apply it to calculate on-the-fly the ab initio anharmonic nuclear densities in the correspondence of the fundamental transitions of NH and CH stretches in protonated glycine. We show how we can gain both qualitative and quantitative physical insight by inspection of different one-nucleus densities and assign a character to spectroscopic absorption peaks using the expansion of vibrational states in terms of harmonic basis functions. The visualization of the nuclear vibrations in a purely quantum picture allows us to observe and quantify the effects of anharmonicity on the molecular structure, also to exploit the effect of IR excitations on specific bonds or functional groups, beyond the harmonic approximation. We also calculate the quantum probability distribution of bond lengths, angles, and dihedrals of the molecule. Notably, we observe how in the case of one type of fundamental NH stretching, the typical harmonic nodal pattern is absent in the anharmonic distribution.

摘要

我们详细介绍并验证了一种有效的蒙特卡罗方法,用于通过分子本征函数的积分来计算核振动密度,我们之前曾初步将其用于计算质子化甘氨酸分子中基态和激发态 OH 伸缩振动态的密度[Aieta 等人,Nat Commun 11, 4348(2020)]。在这里,我们首先在基准水分子上验证并详细讨论了该方法的特点。然后,我们将其应用于计算质子化甘氨酸中 NH 和 CH 伸缩基本跃迁对应的从头算非谐核密度。我们展示了如何通过检查不同的单核密度来获得定性和定量的物理洞察力,并通过用谐波基函数展开振动状态来为光谱吸收峰赋予特征。在纯量子图像中观察核振动,使我们能够观察和量化非谐性对分子结构的影响,还可以超越谐波近似,利用 IR 激发对特定键或官能团的影响。我们还计算了分子的键长、角度和二面角的量子概率分布。值得注意的是,我们观察到在一种 NH 伸缩基态的情况下,非谐分布中不存在典型的谐波节点模式。

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