Chemical Physics Theory Group, Department of Chemistry, Center for Quantum Information and Quantum Control, University of Toronto, Toronto, ON M5S 3H6, Canada.
Department of Physics and Astronomy, Aarhus University, 8000 Aarhus C, Denmark.
J Chem Phys. 2019 Feb 28;150(8):084305. doi: 10.1063/1.5082940.
We explore the effects of correlation on the ground-state energies and on photoionization dynamics in atomic Be and Ne. We apply the time-dependent restricted-active-space self-consistent-field method for several excitation schemes and active orbital spaces with and without a dynamic core to address the effects systematically at different levels of approximation. For the ground-state many-electron wave functions, we compare the correlation energies with entropic measures of entanglement. A larger magnitude of the correlation energy does not always correspond to a larger value of the considered entanglement measures. To evaluate the impact of correlation in a process involving continua, we consider photoionization by attosecond pulses. The photoelectron spectra may be significantly affected by including a dynamical core.
我们探讨了相关效应对基态能量和原子 Be、Ne 光电离动力学的影响。我们采用含时受限活性空间自洽场方法,针对不同激发方案和有无动态核的活性轨道空间,在不同近似水平上系统地研究了这些效应。对于基态多电子波函数,我们将相关能与纠缠的熵度量进行了比较。相关能的较大值并不总是对应于所考虑的纠缠度量的较大值。为了评估关联在涉及连续谱的过程中的影响,我们考虑了阿秒脉冲的光电离。包含动态核会显著影响光电子能谱。