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Excitation energies along a range-separated adiabatic connection

机译:沿距离分隔的绝热连接的激发能

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We present a study of the variation of total energies and excitation energies along a range-separated adiabatic connection. This connection links the non-interacting Kohn–Sham electronic system to the physical interacting system by progressively switching on the electron–electron interactions whilst simultaneously adjusting a one-electron effective potential so as to keep the ground-state density constant. The interactions are introduced in a range-dependent manner, first introducing predominantly long-range, and then all-range, interactions as the physical system is approached, as opposed to the conventional adiabatic connection where the interactions are introduced by globally scaling the standard Coulomb interaction. Reference data are reported for the He and Be atoms and the H2 molecule, obtained by calculating the short-range effective potential at the full configurationinteraction level using Lieb’s Legendre-transform approach. As the strength of the electron–electron interactions increases, the excitation energies, calculated for the partially interacting systems along the adiabatic connection, offer increasingly accurate approximations to the exact excitation energies. Importantly, the excitation energies calculated at an intermediate point of the adiabatic connection are much better approximations to the exact excitation energies than are the corresponding Kohn–Sham excitation energies. This is particularly evident in situations involving strong static correlation effects and states with multiple excitation character, such as the dissociating H2 molecule. These results highlight the utility of long-range interacting reference systems as a starting point for the calculation of excitation energies and are of interest for developing and analyzing practical approximate range-separated density-functional methodologies.
机译:我们介绍了沿距离分隔的绝热连接的总能量和激发能量的变化的研究。这种连接通过逐步打开电子-电子相互作用,同时调节单电子有效电位以保持基态密度恒定,从而将非相互作用的Kohn-Sham电子系统连接到物理相互作用系统。交互作用是以范围相关的方式引入的,首先是在接近物理系统时引入主要是远程的,然后是全范围的交互作用,这与常规的绝热连接相反,在常规绝热连接中,通过全局缩放标准库仑来引入交互作用相互作用。报告了有关He和Be原子以及H2分子的参考数据,这些数据是通过使用利勃(Leeb)的Legendre变换方法计算出在完整构型相互作用水平下的短程有效电势而获得的。随着电子与电子相互作用强度的增加,为沿绝热连接的部分相互作用系统计算的激发能为精确激发能提供了越来越精确的近似值。重要的是,在绝热连接的中间点计算出的激发能比对应的Kohn-Sham激发能更好地近似于精确的激发能。这在涉及强静态相关效应和具有多重激发特征的状态的情况下尤其明显,例如离解的H2分子。这些结果突出了远程相互作用参考系统作为计算激发能的起点的实用性,并且对于开发和分析实用的近似范围分隔的密度泛函方法具有重要意义。

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