Hodecker Manuel, Thielen Sebastian M, Liu Junzi, Rehn Dirk R, Dreuw Andreas
Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, D-69120 Heidelberg, Germany.
Department of Chemistry, The Johns Hopkins University, Baltimore, Maryland 21218, United States.
J Chem Theory Comput. 2020 Jun 9;16(6):3654-3663. doi: 10.1021/acs.jctc.0c00335. Epub 2020 May 27.
The efficient implementation of the third-order unitary coupled-cluster scheme (UCC3) for the calculation of excited electronic states is reported. The UCC3 scheme and its second-order UCC2 variant have been benchmarked and compared to Jacquemin's recently introduced, as well as Thiel's well-established, benchmark sets for excitation energies and oscillator strengths. For the latter, the calculation of 134 excited singlet and 71 excited triplet states of 28 small- to medium-sized organic molecules has revealed that UCC2 exhibits a mean error and standard deviation of 0.36 ± 0.41 eV for singlet states and 0.22 ± 0.21 eV for triplet states, whereas UCC3 revealed an accuracy of 0.06 ± 0.27 eV for singlet and -0.22 ± 0.15 eV for triplet states. In addition, the oscillator strengths obtained with effective transition moments correct through second order in perturbation theory are in very good agreement with literature data.
报道了用于计算激发电子态的三阶幺正耦合簇方法(UCC3)的有效实现。已对UCC3方法及其二阶UCC2变体进行了基准测试,并与Jacquemin最近引入的以及Thiel成熟的激发能和振子强度基准集进行了比较。对于后者,对28个中小尺寸有机分子的134个激发单重态和71个激发三重态的计算表明,UCC2对于单重态的平均误差和标准偏差为0.36± 0.41 eV,对于三重态为0.22±0.21 eV,而UCC3对于单重态的精度为0.06±0.27 eV,对于三重态为-0.22±0.15 eV。此外,通过微扰理论二阶有效跃迁矩获得的振子强度与文献数据非常吻合。