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Assessment of charge-transfer excitations with time-dependent, range-separated density functional theory based on long-range MP2 and multiconfigurational self- consistent field wave functions

机译:利用基于时间的距离分隔密度泛函理论基于远程MP2和多配置自洽场波函数评估电荷转移激发

摘要

Charge transfer excitations can be described within Time-Dependent Density Functional Theory (TD-DFT), not only by means of the Coulomb Attenuated Method (CAM) but also with a combination of wave function theory and TD-DFT based on range separation. The latter approach enables a rigorous formulation of multi-determinantal TD-DFT schemes where excitation classes, which are absent in conventional TD-DFT spectra (like for example double excitations), can be addressed. This paper investigates the combination of both the long-range Multi-Configuration Self-Consistent Field (MCSCF) and Second Order Polarization Propagator Approximation (SOPPA) ansätze with a short-range DFT (srDFT) description. We find that the combinations of SOPPA or MCSCF with TD-DFT yield better results than could be expected from the pure wave function schemes. For the Time-Dependent MCSCF short-range DFT ansatz (TD-MC-srDFT) excitation energies calculated over a larger benchmark set of molecules with predominantly single reference character yield good agreement with their reference values, and are in general comparable to the CAM-B3LYP functional. The SOPPA-srDFT scheme is tested for a subset of molecules used for benchmarking TD-MC-srDFT and performs slightly better against the reference data for this small subset. Beyond the proof-of-principle calculations comprising the first part of this contribution, we additionally studied the low-lying singlet excited states (S1 and S2) of the retinal chromophore. The chromophore displays multireference character in the ground state and both excited states exhibit considerable double excitation character, which in turn cannot be described within standard TD-DFT, due to the adiabatic approximation. However, a TD-MC-srDFT approach can account for the multireference character, and excitation energies are obtained with accuracy comparable to CASPT2, although using a much smaller active space.
机译:电荷转移激发可以在时变密度泛函理论(TD-DFT)中进行描述,不仅可以通过库仑衰减方法(CAM)进行描述,还可以将波函数理论与基于距离分离的TD-DFT相结合。后一种方法能够严格确定多确定性TD-DFT方案,其中可以解决常规TD-DFT光谱中不存在的激发类别(例如双重激发)。本文研究了具有短距离DFT(srDFT)描述的远程多配置自洽场(MCSCF)和二阶偏振传播器逼近(SOPPA)分析的结合。我们发现,SOPPA或MCSCF与TD-DFT的组合产生的结果比纯波函数方案所预期的要好。对于随时间变化的MCSCF短程DFT ansatz(TD-MC-srDFT),在较大的基准分子组(主要具有单个参考特征)上计算出的激发能与其参考值具有良好的一致性,并且通常可与CAM- B3LYP功能。 SOPPA-srDFT方案针对用于对TD-MC-srDFT进行基准测试的分子子集进行了测试,相对于此小子集的参考数据,其性能稍好。除了本贡献的第一部分的原理证明计算之外,我们还研究了视网膜发色团的低态单重态激发态(S1和S2)。发色团在基态下显示多参考特征,并且两个激发态都表现出相当大的双重激发特征,由于绝热近似,这又不能在标准TD-DFT中描述。但是,TD-MC-srDFT方法可以解决多参考特性,尽管使用的活动空间要小得多,但获得的激励能量的精度可与CASPT2媲美。

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