Nanda Kaushik D, Gulania Sahil, Krylov Anna I
Department of Chemistry, University of Southern California, Los Angeles, California 90089-0482, USA.
J Chem Phys. 2023 Feb 7;158(5):054102. doi: 10.1063/5.0135052.
The equation-of-motion coupled-cluster singles and doubles method with double electron attachment (EOM-DEA-CCSD) is capable of computing reliable energies, wave functions, and first-order properties of excited states in diradicals and polyenes that have a significant doubly excited character with respect to the ground state, without the need for including the computationally expensive triple excitations. Here, we extend the capabilities of the EOM-DEA-CCSD method to the calculations of a multiphoton property, two-photon absorption (2PA) cross sections. Closed-form expressions for the 2PA cross sections are derived within the expectation-value approach using response wave functions. We analyze the performance of this new implementation by comparing the EOM-DEA-CCSD energies and 2PA cross sections with those computed using the CC3 quadratic response theory approach. As benchmark systems, we consider transitions to the states with doubly excited character in twisted ethene and in polyenes, for which EOM-EE-CCSD (EOM-CCSD for excitation energies) performs poorly. The EOM-DEA-CCSD 2PA cross sections are comparable with the CC3 results for twisted ethene; however, the discrepancies between the two methods are large for hexatriene. The observed trends are explained by configurational analysis of the 2PA channels.
含双电子附着的运动方程耦合簇单双激发方法(EOM - DEA - CCSD)能够计算双自由基和多烯激发态的可靠能量、波函数及一阶性质,这些激发态相对于基态具有显著的双激发特征,且无需包含计算成本高昂的三激发。在此,我们将EOM - DEA - CCSD方法的能力扩展至多光子性质——双光子吸收(2PA)截面的计算。利用响应波函数,在期望值方法内推导出2PA截面的闭式表达式。通过将EOM - DEA - CCSD能量和2PA截面与使用CC3二次响应理论方法计算的结果进行比较,我们分析了这种新实现方式的性能。作为基准系统,我们考虑向扭曲乙烯和多烯中具有双激发特征的态的跃迁,对于这些跃迁,EOM - EE - CCSD(用于激发能的EOM - CCSD)表现不佳。EOM - DEA - CCSD的2PA截面与扭曲乙烯的CC3结果相当;然而,对于己三烯,两种方法之间的差异很大。通过对2PA通道的构型分析解释了观察到的趋势。