Max Planck Institute for Chemical Energy Conversion , Stiftstr. 34-36 , 45470 Mülheim an der Ruhr , Germany.
Institute of Physical Chemistry , Polish Academy of Sciences , Kasprzaka 44/52 , 01-224 Warsaw , Poland.
J Chem Theory Comput. 2018 Aug 14;14(8):4320-4334. doi: 10.1021/acs.jctc.8b00302. Epub 2018 Jul 16.
In this study the M- and L-edge X-ray absorption spectra of a series of open- and closed-shell solids (TiO rutile, α-FeO hematite, FeS pyrite, and the spinel CoO) are investigated with the restricted open-shell configuration interaction singles methods (ROCIS/DFT and PNO-ROCIS/DFT) using the embedded cluster approach. ROCIS/DFT type of methods are grounded in wave function-based ab initio electronic structure theory and have shown great performance in the field of X-ray spectroscopy in particular in the field of transition metal L-edge spectroscopy. In this work we show that ROCIS/DFT can be used to calculate and interpret metal M- and L-edge XAS spectra of solids. To this end, clusters with up to 52 metal centers are considered. In all cases good to excellent agreement between theory and experiment is obtained. The experimentally probed local coordination environments are discussed in detail. The physical origin of the observed spectral features is explored through the machinery of natural difference orbitals. This analysis provides valuable information with respect to the core to valence, metal to metal charge transfer, and metal to ligand charge transfer characters of the relativistically corrected many particle states. The influence of the above electronic effects to the spectral shapes and the size of the treated clusters are thoroughly investigated.
在这项研究中,使用嵌入簇方法,通过受限开壳组态相互作用单重态方法(ROCIS/DFT 和 PNO-ROCIS/DFT)研究了一系列开壳和闭壳固体(TiO 金红石、α-FeO 赤铁矿、FeS 黄铁矿和尖晶石 CoO)的 M 和 L 边 X 射线吸收光谱。ROCIS/DFT 类型的方法基于波函数的从头算电子结构理论,在 X 射线光谱学领域,特别是在过渡金属 L 边光谱学领域表现出了出色的性能。在这项工作中,我们表明 ROCIS/DFT 可用于计算和解释固体的金属 M 和 L 边 XAS 光谱。为此,考虑了多达 52 个金属中心的簇。在所有情况下,理论与实验之间都取得了良好到极好的一致性。详细讨论了实验探测到的局部配位环境。通过自然差分轨道的机制探索了观察到的光谱特征的物理起源。这种分析为相对论校正多粒子态的核心到价、金属到金属电荷转移以及金属到配体电荷转移特性提供了有价值的信息。彻底研究了上述电子效应对光谱形状和处理簇大小的影响。