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Towards Iron(II) Complexes with Octahedral Geometry: Synthesis Structure and Photophysical Properties

机译:朝向铁(II)复合物八面体几何形状:合成结构和光物理性质

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摘要

The control of ligand-field splitting in iron (II) complexes is critical to slow down the metal-to-ligand charge transfer (MLCT)-excited states deactivation pathways. The gap between the metal-centered states is maximal when the coordination sphere of the complex approaches an ideal octahedral geometry. Two new iron(II) complexes (C1 and C2), prepared from pyridylNHC and pyridylquinoline type ligands, respectively, have a near-perfect octahedral coordination of the metal. The photophysics of the complexes have been further investigated by means of ultrafast spectroscopy and TD-DFT modeling. For C1, it is shown that—despite the geometrical improvement—the excited state deactivation is faster than for the parent pseudo-octahedral C0 complex. This unexpected result is due to the increased ligand flexibility in C1 that lowers the energetic barrier for the relaxation of 3MLCT into the 3MC state. For C2, the effect of the increased ligand field is not strong enough to close the prominent deactivation channel into the metal-centered quintet state, as for other Fe-polypyridine complexes.
机译:铁(II)复合物中配体场分裂的控制对于减缓金属 - 配体电荷转移(MLCT) - 探测状态的抗激活途径至关重要。当复合物的配位球体接近理想的八面体几何形状时,金属中心状态之间的间隙是最大的。由吡啶基和吡啶基喹啉型配体分别制备的两种新的铁(II)配合物(C1和C2)具有近乎完美的金属的八面体配位。通过超快光谱和TD-DFT建模进一步研究了复合物的光药。对于C1,表明 - 尽管几何改善 - 激发态失活度比母伪八面体C0复合物快。这种意外的结果是由于C1中的配体柔韧性增加,降低了将3mLct放松的能量屏障进入3MC状态。对于C2,增加的配体场的效果不足以足够强以将突出的失活通道闭合到以金属为中心的Quintet状态,至于其他Fe-聚吡啶络合物。

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