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The Electronic Structure of Mn in Oxides Coordination Complexes and the Oxygen-Evolving Complex of Photosystem II Studied by Resonant Inelastic X-ray Scattering

机译:共振非弹性X射线散射研究光系统II中氧化物配位配合物和析氧配合物中锰的电子结构

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摘要

Resonant inelastic X-ray scattering (RIXS) was used to collect Mn K pre-edge spectra and to study the electronic structure in oxides, molecular coordination complexes, as well as the S1 and S2 states of the oxygen-evolving complex (OEC) of photosystem II (PS II). The RIXS data yield two-dimensional plots that can be interpreted along the incident (absorption) energy or the energy transfer axis. The second energy dimension separates the pre-edge (predominantly 1s to 3d transitions) from the main K-edge, and a detailed analysis is thus possible. The 1s2p RIXS final-state electron configuration along the energy transfer axis is identical to conventional L-edge absorption spectroscopy, and the RIXS spectra are therefore sensitive to the Mn spin state. This new technique thus yields information on the electronic structure that is not accessible in conventional K-edge absorption spectroscopy. The line splittings can be understood within a ligand field multiplet model, i.e., (3d,3d) and (2p,3d) two-electron interactions are crucial to describe the spectral shapes in all systems. We propose to explain the shift of the K pre-edge absorption energy upon Mn oxidation in terms of the effective number of 3d electrons (fractional 3d orbital population). The spectral changes in the Mn 1s2p3/2 RIXS spectra between the PS II S1 and S2 states are small compared to that of the oxides and two of the coordination complexes (MnIII(acac)3 and MnIV(sal)2(bipy)). We conclude that the electron in the step from S1 to S2 is transferred from a strongly delocalized orbital.
机译:共振非弹性X射线散射(RIXS)用于收集Mn K前缘光谱,并研究氧化物的电子结构,分子配位配合物以及氧合成配合物(OEC)的S1和S2态。光系统II(PS II)。 RIXS数据产生二维图,可以沿入射(吸收)能或能量传递轴解释二维图。第二个能量维度将前边缘(主要是1s到3d过渡)与主K边缘分开,因此可以进行详细分析。沿能量转移轴的1s2p RIXS最终状态电子构型与常规L边吸收光谱法相同,因此RIXS光谱对Mn自旋态敏感。因此,这项新技术会产生有关电子结构的信息,这是常规K边吸收光谱学无法获得的。可以在配体场多重态模型中理解线分裂,即(3d,3d)和(2p,3d)两电子相互作用对于描述所有系统中的光谱形状至关重要。我们建议用3d电子的有效数量(分数3d轨道人口)来解释Mn氧化时K前缘吸收能的移动。 PS II S1和S2状态之间Mn 1s2p3 / 2 RIXS光谱的光谱变化与氧化物和两个配位配合物(Mn III (acac)3和Mn < sup> IV (sal)2(bipy))。我们得出结论,在从S1到S2的步骤中,电子是从强离域轨道转移的。

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