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MLCT excited states and charge delocalization in some ruthenium-ammine-polypyridyl complexes

机译:MLCT在一些钌-胺-聚吡啶配合物中的激发态和电荷离域

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The ab initio calculations of polypyridine π~*-orbital energies are the basis for assignment of the lowest energy, highest intensity metal-to-ligand charge transfer (MLCT) transitions in simple ammine-polypyridine-ruthenium(Ⅱ) complexes. A gaussian analysis of the absorption and emission spectra of these complexes enables the evaluation of reorganizational energies for the vertical MLCT transitions from component bandwidths and from apparent vibronic progressions. The observed bandwidths are about half of the widths expected in the limit of no metal-ligand mixing. The excited state-ground state mixing coefficient, α_(DA), is inferred to be about 0.3 in [Ru(NH_3)_4bpy]~(2+) based on this observation and a perturbation theory argument. These estimated reorganizational energies are combined with the observed ambient Stokes shifts to determine that the excited state electron exchange energy, K_e, is small (600-1200 cm~(-1) for 2,2′ bipyridine complexes; ~1500 cm~(-1) for 2,3-bis-(2-pyridyl)pyrazine complexes), but significant. This and the observation that the N-H stretching frequency increases as the vertical MLCT energy (or α_(DA)~2) decreases suggests that there is significant charge delocalization in these complexes.
机译:从头算计算聚吡啶π〜*轨道能量是分配简单的氨-聚吡啶-钌(Ⅱ)配合物中最低能量,最高强度的金属到配体电荷转移(MLCT)跃迁的基础。对这些络合物的吸收光谱和发射光谱进行高斯分析,可以评估垂直MLCT跃迁的重组能,这些跃迁是由组分带宽和明显的电子振动过程引起的。观察到的带宽约为在没有金属-配体混合的极限下预期宽度的一半。基于该观察和扰动理论,推断出[Ru(NH_3)_4bpy]〜(2+)中的激发态-基态混合系数α_(DA)约为0.3。将这些估计的重组能与观察到的环境斯托克斯位移相结合,以确定激发态电子交换能K_e小(对于2,2'联吡啶配合物为600-1200 cm〜(-1);〜1500 cm〜(- 1)对于2,3-双-(2-吡啶基)吡嗪配合物),但很重要。这和N-H拉伸频率随垂直MLCT能量(或α_(DA)〜2)减小而增加的观察结果表明,这些配合物中存在明显的电荷离域。

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