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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Toward spin-orbit coupled diabatic potential energy surfaces for methyl iodide using effective relativistic coupling by asymptotic representation
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Toward spin-orbit coupled diabatic potential energy surfaces for methyl iodide using effective relativistic coupling by asymptotic representation

机译:使用渐近表示法通过有效的相对论耦合向甲基碘的自旋轨道耦合的非绝热势能面

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The theoretical treatment of state-state interactions and the development of coupled multidimensional potential energy surfaces (PESs) is of fundamental importance for the theoretical investigation of nonadiabatic processes. Usually, only derivative or vibronic coupling is considered, but the presence of heavy atoms in a system can render spin-orbit (SO) coupling important as well. In the present study, we apply a new method recently developed by us (J. Chem. Phys. 201~2, 136, 034103, and J. Chem. Phys. 201~2, 137, 064101) to generate SO coupled diabatic PESs along the C-I dissociation coordinate for methyl iodide (CH_3I). This is the first and mandatory step toward the development of fully coupled full-dimensional PESs to describe the multistate photodynamics of this benchmark system. The method we use here is based on the diabatic asymptotic representation of the molecular fine structure states and an effective relativistic coupling operator. It therefore is called effective relativistic coupling by asymptotic representation (ERCAR). This approach allows the efficient and accurate generation of fully coupled PESs including derivative and SO coupling based on high-level ab initio calculations. In this study we develop a specific ERCAR model for CH_3I that so far accounts only for the C-I bond cleavage. Details of the diabatization and the accuracy of the results are investigated in comparison to reference ab initio calculations and experiments. The energies of the adiabatic fine structure states are reproduced in excellent agreement with ab initio SO-CI data. The model is also compared to available literature data, and its performance is evaluated critically. This shows that the new method is very promising for the construction of fully coupled full-dimensional PESs for CH_3I to be used in future quantum dynamics studies.
机译:对于非绝热过程的理论研究,状态-状态相互作用和耦合多维势能面(PESs)的发展的理论处理是至关重要的。通常,仅考虑导数或振动耦合,但系统中重原子的存在也会使自旋轨道(SO)耦合也很重要。在本研究中,我们应用了我们最近开发的一种新方法(J. Chem。Phys。201〜2,136,034103,和J. Chem。Phys。201〜2,137,064101)来生成SO耦合的非绝热PES沿甲基碘(CH_3I)的CI解离坐标。这是开发全耦合全尺寸PES的第一步,也是必不可少的步骤,以描述此基准系统的多态光动力学。我们在此使用的方法基于分子精细结构状态的非绝热渐近表示和有效的相对论耦合算符。因此,它被称为通过渐近表示的有效相对论耦合(ERCAR)。这种方法允许基于高级从头算起的高效,准确的全耦合PES生成,包括微分和SO耦合。在这项研究中,我们为CH_3I开发了一个特定的ERCAR模型,到目前为止,该模型仅说明了C-I键的裂解。与参考的从头算和实验进行比较,研究了渗碳作用的细节和结果的准确性。绝热精细结构态的能量与从头算的SO-CI数据完全吻合。还将模型与可用的文献数据进行比较,并对其性能进行严格评估。这表明该新方法对于构建CH_3I的全耦合全尺寸PES很有前景,可用于未来的量子动力学研究。

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