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Charge-transfer excited states in phosphorescent organo-transition metal compounds: a difficult case for time dependent density functional theory?

机译:磷光有机过渡金属化合物中的电荷转移激发态:随时间变化的密度泛函理论的困难情况?

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摘要

Light emitting organo-transition metal complexes have found widespread use in the past. The computational modelling of such compounds is often based on time-dependent density functional theory (TDDFT), which enjoys popularity due to its numerical efficiency and simple black-box character. It is well known, however, that TDDFT notoriously underestimates energies of charge-transfer excited states which are prominent in phosphorescent metal–organic compounds. In this study, we investigate whether TDDFT is providing a reliable description of the electronic properties in these systems. To this end, we compute 0–0 triplet state energies for a series of 17 pseudo-square planar platinum(II) and pseudo-octahedral iridium(III) complexes that are known to feature quite different localization characteristics ranging from ligand-centered (LC) to metal-to-ligand charge transfer (MLCT) transitions. The calculations are performed with conventional semi-local and hybrid functionals as well as with optimally tuned range-separated functionals that were recently shown to overcome the charge transfer problem in TDDFT. We compare our results against low temperature experimental data and propose a criterion to classify excited states based on wave function localization. In addition, singlet absorption energies and singlet–triplet splittings are evaluated for a subset of the compounds and are also validated against experimental data. Our results indicate that for the investigated complexes charge-transfer is much less pronounced than previously believed.
机译:发光有机过渡金属络合物在过去已经发现了广泛的用途。此类化合物的计算模型通常基于时间依赖的密度泛函理论(TDDFT),由于其数值效率和简单的黑匣子特性而广受欢迎。然而,众所周知,TDDFT显然低估了在磷光金属有机化合物中很重要的电荷转移激发态的能量。在这项研究中,我们调查TDDFT是否提供了这些系统中电子性能的可靠描述。为此,我们计算了一系列17个伪正方形平面铂(II)和伪八面体铱(III)配合物的0-0三重态能量,已知这些配合物具有以配体为中心(LC) )到金属到配体的电荷转移(MLCT)过渡。该计算是使用常规的半局部和混合函数以及最近被证明可克服TDDFT中电荷转移问题的最佳调谐范围分隔函数进行的。我们将结果与低温实验数据进行比较,并提出了基于波函数定位对激发态进行分类的标准。此外,还针对一部分化合物评估了单重态吸收能和单重态-三重态分裂,并根据实验数据进行了验证。我们的结果表明,对于所研究的复合物,电荷转移的作用远不如先前所相信。

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