Simulation of Ultrafast Excited-State Dynamics in Fe(II) Complexes: Assessment of Electronic Structure Descriptions

Mátyás, Pápai
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Abstract

The assessment of electronic structure descriptions utilized in the simulation of ultrafast excited-state dynamics of Fe(II) complexes is presented. Herein, we evaluate the performance of the RPBE, OPBE, BLYP, B3LYP, B3LYP*, CAM-B3LYP, and LC-BLYP (time-dependent) density functional theory (DFT/TD-DFT) methods in full-dimensional trajectory surface hopping (TSH) simulations carried out on linear vibronic coupling (LVC) potentials. We exploit the existence of time-resolved X-ray emission spectroscopy (XES) data for the [Fe(bmip)2]2+ and [Fe(terpy)2]2+ prototypes for dynamics between metal-to-ligand charge transfer (MLCT) and metal-centered (MC) states, which serve as a reference to benchmark the calculations (bmip = 2,6-bis(3-methyl-imidazole-1-ylidine)-pyridine, terpy = 2,2’:6’,2''-terpyridine). The results show that the simulated ultrafast population dynamics between MLCT and MC states with various spin multiplicilities (singlet, triplet, quintet) highly depend on the utilized DFT/TD-DFT method with the percentage of exact (Hartree-Fock) exchange being the governing factor. Importantly, B3LYP* is the only DFT/TD-DFT method reproducing all important aspects of the experimentally resolved dynamics for both complexes, signalling an optimal balance in the description of MLCT-MC energetics. This work demonstrates the power of combining TSH/LVC dynamics simulations with time-resolved experimental reference data to benchmark full-dimensional potential energy surfaces.
铁(II)配合物的超快激发态动力学模拟:电子结构描述评估
本文介绍了对铁(II)复合物超快激发态动力学模拟中使用的电子结构描述的评估。在此,我们评估了 RPBE、OPBE、BLYP、B3LYP、B3LYP*、CAM-B3LYP 和 LC-BLYP(随时间变化的)密度泛函理论(DFT/TD-DFT)方法在线性振子耦合(LVC)势的全维轨迹表面跳跃(TSH)模拟中的性能。我们利用[Fe(bmip)2]2+和[Fe(terpy)2]2+原型的时间分辨 X 射线发射光谱(XES)数据来研究金属-配体电荷转移(MLCT)和金属-中心(MC)态之间的动力学,这些数据可作为计算基准的参考(bmip = 2,6-双(3-甲基-咪唑-1-基啶)-吡啶,terpy = 2,2':6',2''-三联吡啶)。结果表明,模拟的 MLCT 和 MC 态之间的超快种群动力学具有不同的自旋倍率(单线态、三线态、五线态),这在很大程度上取决于所使用的 DFT/TD-DFT 方法,其中精确(哈特里-福克)交换的百分比是决定性因素。重要的是,B3LYP* 是唯一能重现两种复合物实验解析动力学所有重要方面的 DFT/TD-DFT 方法,这表明在描述 MLCT-MC 能量学时达到了最佳平衡。这项工作展示了将 TSH/LVC 动力学模拟与时间分辨实验参考数据相结合,以全维势能面为基准的威力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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