Institute for Methods and Instrumentation for Synchrotron Radiation Research, Helmholtz-Zentrum Berlin für Materialien und Energie GmbH , 12489 Berlin , Germany.
Department of Chemistry - Ångström Laboratory , Uppsala University , SE-75121 Uppsala , Sweden.
Inorg Chem. 2018 May 7;57(9):5449-5462. doi: 10.1021/acs.inorgchem.8b00419. Epub 2018 Apr 10.
The 3d transition metals play a pivotal role in many charge transfer processes in catalysis and biology. X-ray absorption spectroscopy at the L-edge of metal sites probes metal 2p-3d excitations, providing key access to their valence electronic structure, which is crucial for understanding these processes. We report L-edge absorption spectra of Mn(acac) and Mn(acac) complexes in solution, utilizing a liquid flatjet for X-ray absorption spectroscopy in transmission mode. With this, we derive absolute absorption cross-sections for the L-edge transitions with peak magnitudes as large as 12 and 9 Mb for Mn(acac) and Mn(acac), respectively. We provide insight into the electronic structure with ab initio restricted active space calculations of these L-edge transitions, reproducing the experimental spectra with excellent agreement in terms of shapes, relative energies, and relative intensities for the two complexes. Crystal field multiplet theory is used to assign spectral features in terms of the electronic structure. Comparison to charge transfer multiplet calculations reveals the importance of charge transfer in the core-excited final states. On the basis of our experimental observations, we extrapolate the feasibility of 3d transition metal L-edge absorption spectroscopy using the liquid flatjet approach in probing highly dilute biological solution samples and possible extensions to table-top soft X-ray sources.
3d 过渡金属在催化和生物学中的许多电荷转移过程中起着关键作用。金属位点的 L 边 X 射线吸收光谱探测金属 2p-3d 激发,为研究这些过程提供了关键的价电子结构信息。我们报告了 Mn(acac)和 Mn(acac)配合物在溶液中的 L 边吸收光谱,利用液体平面喷射器在透射模式下进行 X 射线吸收光谱研究。由此,我们获得了 L 边跃迁的绝对吸收截面,峰值高达 12 和 9 Mb,分别对应于 Mn(acac)和 Mn(acac)。我们通过这些 L 边跃迁的从头算限制活性空间计算深入了解了它们的电子结构,在形状、相对能量和两个配合物的相对强度方面,实验光谱与计算结果吻合得非常好。晶体场多谱线理论用于根据电子结构分配光谱特征。与电荷转移多谱线计算的比较揭示了在核心激发的末态中电荷转移的重要性。基于我们的实验观察,我们推断出使用液体平面喷射器探测高度稀释的生物溶液样品和可能扩展到台式软 X 射线源的 3d 过渡金属 L 边吸收光谱的可行性。