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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Simulating picosecond iron K-edge X-ray absorption spectra by ab initio methods to study photoinduced changes in the electronic structure of Fe(II) spin crossover complexes
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Simulating picosecond iron K-edge X-ray absorption spectra by ab initio methods to study photoinduced changes in the electronic structure of Fe(II) spin crossover complexes

机译:通过从头算方法模拟皮秒级铁K边​​缘X射线吸收光谱,研究Fe(II)自旋交联配合物电子结构的光诱导变化

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Recent time-resolved X-ray absorption experiments probing the low-spin to high-spin photoconversion in Fe(II) complexes have monitored the complex interplay between electronic and structural degrees of freedom on an ultrafast time scale. In this study, we use transition potential (TP) and time-dependent (TD) DFT to simulate the picosecond time-resolved iron K-edge X-ray absorption spectrum of the spin crossover (SCO) complex, [Fe(tren(py)_3)] ~(2+). This is achieved by simulating the X-ray absorption spectrum of [Fe(tren(py)_3)]~(2+) in its low-spin (LS), ~1A _1, ground state and its high-spin (HS), ~5T_2, excited state. These results are compared with the X-ray absorption spectrum of the high-spin analogue (HSA), [Fe(tren(6-Me-py)_3)]~(2+) , which has a ~5T_2 ground state. We show that the TP-DFT methodology can simulate a 40 eV range of the iron K-edge XANES spectrum reproducing all of the major features observed in the static and transient spectra of the LS, HS, and HSA complexes. The pre-edge region of the K-edge spectrum, simulated by TD-DFT, is shown to be highly sensitive to metal-ligand bonding. Changes in the intensity of the pre-edge region are shown to be sensitive to both symmetry and π-backbonding by analysis of relative electric dipole and quadrupole contributions to the transition moments. We generate a spectroscopic map of the iron 3d orbitals from our TD-DFT results and determine ligand field splitting energies of 1.55 and 1.35 eV for the HS and HSA complexes, respectively. We investigate the use of different functionals finding that hybrid functionals (such as PBE0) produce the best results. Finally, we provide a detailed comparison of our results with theoretical methods that have been previously used to interpret Fe K-edge spectroscopy of equilibrium and time-resolved SCO complexes.
机译:最近的时间分辨X射线吸收实验在Fe(II)配合物中探测从低旋转到高旋转的光转换,已经在超快的时间尺度上监测了电子和结构自由度之间的复杂相互作用。在这项研究中,我们使用跃迁电势(TP)和时间相关(TD)DFT来模拟自旋交叉(SCO)络合物[Fe(tren(py )_3)]〜(2+)。这是通过模拟[Fe(tren(py)_3)]〜(2+)在其低旋转(LS),〜1A _1,基态和其高旋转(HS)的X射线吸收光谱来实现的,〜5T_2,激发态。将这些结果与具有〜5T_2基态的高自旋类似物(HSA)[Fe(tren(6-Me-py)_3)]〜(2+)的X射线吸收光谱进行了比较。我们表明TP-DFT方法可以模拟40 eV范围的铁K边缘XANES光谱,再现LS,HS和HSA配合物的静态和瞬态光谱中观察到的所有主要特征。 TD-DFT模拟的K边缘光谱的前边缘区域显示出对金属-配体键合高度敏感。通过分析相对电偶极子和四极子对跃迁矩的贡献,可以显示前边缘区域强度的变化对对称性和π反向键均敏感。我们从TD-DFT结果生成3d铁轨道的光谱图,并确定HS和HSA配合物的配体场分裂能分别为1.55和1.35 eV。我们调查了不同功能的使用,发现混合功能(例如PBE0)产生了最佳结果。最后,我们用理论方法对我们的结果进行了详细的比较,这些理论方法先前已用于解释平衡和时间分辨SCO配合物的Fe K边缘光谱。

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