首页> 外文期刊>The Journal of Chemical Physics >Static polarizabilities for excited states within the spin-conserving and spin-flipping equation-of-motion coupled-cluster singles and doubles formalism: Theory, implementation, and benchmarks
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Static polarizabilities for excited states within the spin-conserving and spin-flipping equation-of-motion coupled-cluster singles and doubles formalism: Theory, implementation, and benchmarks

机译:自旋守恒和自旋翻转运动方程组中的激发态的静态极化率单双打形式:理论,实现和基准

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We present the theory and implementation for calculating static polarizabilities within the equation-of-motion coupled-cluster singles and doubles (EOM-CCSD) framework for electronically excited states and its spin-flip variant. We evaluate the second derivatives of the EOM-CCSD Lagrangian with respect to electric-field perturbations. The relaxation of reference molecular orbitals is not included. In our approach, the wave function amplitudes satisfy the 2n + 1 rule and the amplitude-response Lagrange multipliers satisfy the 2n + 2 rule. The new implementation is validated against finite-field and CCSD response-theory calculations of the excited-state polarizabilities of pyrimidine and s-tetrazine. We use the new method to compute static polarizabilities of different types of electronic states (valence, charge-transfer, singlets, and triplets) in open-and closed-shell systems (uracil, p-nitroaniline, methylene, and p-benzyne). We also present an alternative approach for calculating excited-state static polarizabilities as expectation values by using the EOM-CCSD wave functions and energies in the polarizability expression for an exact state. We find that this computationally less demanding approach may show differences up to similar to 30% relative to the excited-state polarizabilities computed using the analytic-derivative formalism. Published by AIP Publishing.
机译:我们介绍了在运动方程耦合簇单双打(EOM-CCSD)框架内计算电子激发态及其自旋翻转形式的静态极化率的理论和实现。我们针对电场扰动评估EOM-CCSD拉格朗日方程的二阶导数。不包括参考分子轨道的弛豫。在我们的方法中,波函数振幅满足2n +1规则,幅度响应拉格朗日乘数满足2n +1规则。相对于嘧啶和s-四嗪激发态极化率的有限域和CCSD响应理论计算,对新的实现方案进行了验证。我们使用这种新方法来计算开壳和闭壳系统(尿嘧啶,对硝基苯胺,亚甲基和对苯并zy)中不同类型电子态(价,电荷转移,单线态和三重态)的静态极化率。我们还提出了一种替代方法,可以通过使用EOM-CCSD波函数和极化率表达式中的能量来计算激发态静态极化率作为期望值,以获得精确的状态。我们发现,相对于使用解析导数形式主义计算出的激发态极化率,这种计算量较少的方法可能会显示出高达30%的差异。由AIP Publishing发布。

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