Butorin Sergei M, Bauters Stephen, Amidani Lucia, Beck Aaron, Rossberg André, Weiss Stephan, Vitova Tonya, Kvashnina Kristina O, Tougait Olivier
Condensed Matter Physics of Energy Materials, X-ray Photon Science, Department of Physics and Astronomy, Uppsala University, P.O. Box 516, 751 20, Uppsala, Sweden.
Helmholtz-Zentrum Dresden-Rossendorf (HZDR), Institute of Resource Ecology, P.O. Box 510119, 01314, Dresden, Germany.
Sci Rep. 2023 Nov 22;13(1):20434. doi: 10.1038/s41598-023-47579-7.
The electronic structure of UC[Formula: see text] (x = 0.9, 1.0, 1.1, 2.0) was studied by means of x-ray absorption spectroscopy (XAS) at the C K edge and measurements in the high energy resolution fluorescence detection (HERFD) mode at the U [Formula: see text] and [Formula: see text] edges. The full-relativistic density functional theory calculations taking into account the [Formula: see text] Coulomb interaction U and spin-orbit coupling (DFT+U+SOC) were also performed for UC and UC[Formula: see text]. While the U [Formula: see text] HERFD-XAS spectra of the studied samples reveal little difference, the U [Formula: see text] HERFD-XAS spectra show certain sensitivity to the varying carbon content in uranium carbides. The observed gradual changes in the U [Formula: see text] HERFD spectra suggest an increase in the C 2p-U 5f charge transfer, which is supported by the orbital population analysis in the DFT+U+SOC calculations, indicating an increase in the U 5f occupancy in UC[Formula: see text] as compared to that in UC. On the other hand, the density of states at the Fermi level were found to be significantly lower in UC[Formula: see text], thus affecting the thermodynamic properties. Both the x-ray spectroscopic data (in particular, the C K XAS measurements) and results of the DFT+U+SOC calculations indicate the importance of taking into account U and SOC for the description of the electronic structure of actinide carbides.
通过在碳 K 边的 X 射线吸收光谱(XAS)以及在 U [公式:见原文] 和 [公式:见原文] 边的高能分辨率荧光检测(HERFD)模式下的测量,研究了 UC[公式:见原文](x = 0.9、1.0、1.1、2.0)的电子结构。还对 UC 和 UC[公式:见原文] 进行了考虑 [公式:见原文] 库仑相互作用 U 和自旋轨道耦合(DFT + U + SOC)的全相对论密度泛函理论计算。虽然所研究样品的 U [公式:见原文] HERFD - XAS 光谱显示出很小的差异,但 U [公式:见原文] HERFD - XAS 光谱对碳化铀中碳含量的变化表现出一定的敏感性。在 U [公式:见原文] HERFD 光谱中观察到的逐渐变化表明 C 2p - U 5f 电荷转移增加,这在 DFT + U + SOC 计算中的轨道占据分析中得到了支持,表明与 UC 相比,UC[公式:见原文] 中 U 5f 的占据增加。另一方面,发现 UC[公式:见原文] 中费米能级处的态密度显著更低,从而影响热力学性质。X 射线光谱数据(特别是 C K XAS 测量)和 DFT + U + SOC 计算结果都表明,在描述锕系碳化物的电子结构时考虑 U 和 SOC 的重要性。