Jayadev Nayanthara K, Jagau Thomas-C, Krylov Anna I
Department of Chemistry, University of Southern California, Los Angeles, California 90089, United States.
Department of Chemistry, KU Leuven, B-3001 Leuven, Belgium.
J Phys Chem A. 2025 Jan 23;129(3):733-743. doi: 10.1021/acs.jpca.4c07304. Epub 2025 Jan 13.
We present ab initio calculations of the resonant Auger spectrum of benzene. In the resonant process, Auger decay ensues following the excitation of a core-level electron to a virtual orbital. Hence, resonant Auger decay gives rise to higher-energy Auger electrons compared to nonresonant decay. We apply equation-of-motion coupled-cluster (EOM-CC) methods to compute the spectrum in order to explain the main features in the experimental spectrum and to assess the capability and limitations of the available theoretical approaches. The results indicate that participator decay can be well described with the Feshbach-Fano approach based on EOM-CC wave functions in the singles and doubles (SD) approximation, but spectator decay is more difficult to describe. This is because the target states of spectator decay are doubly excited, resulting in the need to include triple excitations in the EOM-CC wave function. Resonant Auger decay in benzene is thus a challenging test case for EOM-CC theory. We examine the performance of different noniterative triple corrections to EOM-IP-CCSD and our numerical results highlight the need to include triple excitations iteratively.
我们展示了对苯的共振俄歇光谱的从头算计算。在共振过程中,芯能级电子激发到虚轨道后会发生俄歇衰变。因此,与非共振衰变相比,共振俄歇衰变会产生能量更高的俄歇电子。我们应用运动方程耦合簇(EOM-CC)方法来计算光谱,以解释实验光谱中的主要特征,并评估现有理论方法的能力和局限性。结果表明,基于单双激发(SD)近似下的EOM-CC波函数的费什巴赫-法诺方法可以很好地描述参与体衰变,但旁观者衰变更难描述。这是因为旁观者衰变的目标态是双激发的,导致需要在EOM-CC波函数中包含三激发。因此,苯中的共振俄歇衰变是EOM-CC理论的一个具有挑战性的测试案例。我们研究了对EOM-IP-CCSD的不同非迭代三修正的性能,我们的数值结果突出了迭代包含三激发的必要性。