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核运动引起的荷移与荷转竞争:模型体系与锂的应用。

Competition between charge migration and charge transfer induced by nuclear motion following core ionization: Model systems and application to Li.

机构信息

International Centre for Quantum and Molecular Structures and Department of Physics, Shanghai University, Shanghai 200444, China.

School of Mathematical and Physical Sciences, University of Technology Sydney, Sydney, NSW 2007, Australia.

出版信息

J Chem Phys. 2019 Sep 28;151(12):124108. doi: 10.1063/1.5117246.

Abstract

Attosecond and femtosecond spectroscopies present opportunities for the control of chemical reaction dynamics and products, as well as for quantum information processing; we address the somewhat unique situation of core-ionization spectroscopy which, for dimeric chromophores, leads to strong valence charge localization and hence tightly paired potential-energy surfaces of very similar shape. Application is made to the quantum dynamics of core-ionized Li . This system is chosen as Li is the simplest stable molecule facilitating both core ionization and valence ionization. First, the quantum dynamics of some model surfaces are considered, with the surprising result that subtle differences in shape between core-ionization paired surfaces can lead to dramatic differences in the interplay between electronic charge migration and charge transfer induced by nuclear motion. Then, equation-of-motion coupled-cluster calculations are applied to determine potential-energy surfaces for 8 core-excited state pairs, calculations believed to be the first of their type for other than the lowest-energy core-ionized molecular pair. While known results for the lowest-energy pair suggest that Li is unsuitable for studying charge migration, higher-energy pairs are predicted to yield results showing competition between charge migration and charge transfer. Central is a focus on the application of Hush's 1975 theory for core-ionized X-ray photoelectron spectroscopy to understand the shapes of the potential-energy surfaces and hence predict key features of charge migration.

摘要

飞秒和阿秒光谱学为控制化学反应动力学和产物提供了机会,也为量子信息处理提供了机会;我们将讨论核心电离光谱学的情况,对于二聚体发色团,核心电离会导致强烈的价电荷定位,从而导致非常相似形状的紧密配对势能面。我们将其应用于核心电离 Li 的量子动力学。选择该系统是因为 Li 是最简单的稳定分子,既可以进行核心电离,也可以进行价电离。首先,考虑了一些模型表面的量子动力学,结果令人惊讶,即核心电离配对表面之间形状的细微差异可能导致电子电荷迁移和核运动引起的电荷转移之间的相互作用产生显著差异。然后,应用运动方程耦合簇计算来确定 8 对核心激发态对的势能面,据信这是除最低能量核心电离分子对以外的首次此类计算。虽然对于最低能量对的已知结果表明 Li 不适合研究电荷迁移,但预测高能对将产生显示电荷迁移和电荷转移之间竞争的结果。重点是应用 Hush 于 1975 年提出的核心电离 X 射线光电子能谱理论来理解势能面的形状,从而预测电荷迁移的关键特征。

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