Ultrafast Relaxation of MLCT Excited States in Manganese Tricarbonyl Complexes: Insights from Polarization-Resolved Femtosecond X-ray Absorption Spectroscopy at the Mn and Br K-Edges

化学 离域电子 超快激光光谱学 吸收光谱法 激发态 吸收(声学) 飞秒 光谱学 放松(心理学) 激发 分子物理学 Atom(片上系统) 原子物理学 光化学 光激发 扩展X射线吸收精细结构 电子结构 化学物理 各向异性 再分配(选举) 电子转移 电子光谱学 吸收带 超短脉冲
作者
Christopher J. Otolski,Ryan M. Lamb,Wade C. Henke,Leland B. Gee,David Johnson,Ryan D. Ribson,Takahiro Sato,Sanghoon Song,James Blakemore,Gilles Doumy,Anne Marie March,James E Penner-Hahn,Christopher G. Elles,Roseanne J. Sension
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
标识
DOI:10.1021/jacs.5c17002
摘要

Optical absorption features that are often described as metal-to-ligand charge transfer (MLCT) bands underlie the utility of many metal coordination complexes by harnessing the energy of light to drive otherwise inaccessible chemical reactions. Excitation of these bands triggers rapid electronic dynamics that can be challenging to understand, due to complicated potential energy landscapes and highly correlated electronic and nuclear degrees of freedom in metal-containing compounds. The lowest-energy absorption bands in Mn complexes containing alpha-diimine, carbonyl, and halide ligands are particularly interesting, due to the delocalized nature of charge transfer upon excitation. Here, we report experimental ultrafast dynamics measurements for the series of compounds Mn(CO)3(Rbpy)Br (Rbpy = 4,4'-disubstituted-2,2'-bipyridine; R = H, CF3, or NO2) using polarization-resolved, femtosecond X-ray absorption spectroscopy (XAS) at both the Mn and Br K edges. The appearance of a new absorption feature in the Br pre-edge spectrum upon optical excitation reveals the instantaneous formation of an electronic hole that is partially localized on the Br atom and has a lifetime that depends on the electron withdrawing character of the Rbpy ligand. For two of the complexes (R = H or CF3), a large expansion of the Mn-Br distance results in a rapid redistribution of the hole and a corresponding decrease in anisotropy of the absorption feature within 50 fs, after which the absorption into the hole disappears on a time scale shorter than 300 fs. We observe a different result for the NO2 substituted compound, for which the Mn-Br bond contracts and the absorption into the Br-centered hole persists beyond the 2 ps time scale of our measurement. The Mn pre-edge spectrum also reveals structural changes for these three complexes, but the new Mn absorption features become evident only after the nuclei respond to the initial excitation, which allows mixing of Mn 3d and 4p orbitals. The combined use of ultrafast Mn and Br K-edge spectroscopy provides unique insight into the ways in which bipyridine substitution alters the excited-state dynamics, including a very different structural response for the most strongly electron withdrawing substituent.
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