Ehrman Jordan N, Shumilov Kirill, Jenkins Andrew J, Kasper Joseph M, Vitova Tonya, Batista Enrique R, Yang Ping, Li Xiaosong
Department of Chemistry, University of Washington, Seattle, Washington 98195, United States.
Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.
JACS Au. 2024 Mar 6;4(3):1134-1141. doi: 10.1021/jacsau.3c00838. eCollection 2024 Mar 25.
The M-edge high energy resolution X-ray absorption near-edge structure (HR-XANES) spectra of actinyls offer valuable insights into the electronic structure and bonding properties of heavy-element complexes. To conduct a comprehensive spectral analysis, it is essential to employ computational methods that accurately account for relativistic effects and electron correlation. In this work, we utilize variational relativistic multireference configurational interaction methods to compute and analyze the X-ray M-edge absorption spectrum of uranyl. By employing these advanced computational techniques, we achieve excellent agreement between the calculated spectral features and experimental observations. Moreover, the calculations unveil significant shake-up features, which arise from the intricate interplay between strongly correlated 3d core-electron and ligand excitations. This research provides important theoretical insights into the spectral characteristics of heavy-element complexes. Furthermore, it establishes the foundation for utilizing M-edge spectroscopy as a means to investigate the chemical activities of such complexes. By leveraging this technique, we can gain a deeper understanding of the bonding behavior and reactivity of heavy-element compounds.
锕酰的M边高能分辨率X射线吸收近边结构(HR-XANES)光谱为深入了解重元素配合物的电子结构和键合性质提供了有价值的见解。为了进行全面的光谱分析,采用能够准确考虑相对论效应和电子相关性的计算方法至关重要。在这项工作中,我们利用变分相对论多参考组态相互作用方法来计算和分析铀酰的X射线M边吸收光谱。通过采用这些先进的计算技术,我们在计算的光谱特征与实验观测之间取得了极好的一致性。此外,计算揭示了显著的振激特征,这些特征源于强相关的3d核心电子与配体激发之间的复杂相互作用。这项研究为重元素配合物的光谱特征提供了重要的理论见解。此外,它为利用M边光谱作为研究此类配合物化学活性的手段奠定了基础。通过利用这项技术,我们可以更深入地了解重元素化合物的键合行为和反应性。