Jung Julie, Atanasov Mihail, Neese Frank
Max Planck Institut für Chemische Energiekonversion , Stifstrasse 34-36, D-45470 Mülheim an der Ruhr, Germany.
Institute of General and Inorganic Chemistry, Bulgarian Academy of Sciences , Akad. Georgi Bontchev Street 11, 1113 Sofia, Bulgaria.
Inorg Chem. 2017 Aug 7;56(15):8802-8816. doi: 10.1021/acs.inorgchem.7b00642. Epub 2017 Jul 14.
Actinide chemistry is gaining increased focus in modern research, particularly in the fields of energy research and molecular magnetism. However, the structure-function and structure-property relationships of actinides have still not been studied as intensely as those for transition metals. In this work, we report a detailed ab initio study of the spectroscopic, magnetic, and bonding properties of the trivalent actinide free ions and their associated hexachloride complexes in octahedral symmetry. The electronic structures of these systems are examined using complete active-space self-consistent-field calculations followed by second-order N-electron valence perturbation theory, including both scalar relativistic and spin-orbit-coupling effects. The computed energies and wave functions are further analyzed by means of ab initio ligand-field theory (AILFT) and finally chemically interpreted by means of the angular overlap model (AOM). The derived Slater-Condon and spin-orbit parameters have allowed us to systematically rationalize the spectroscopic and magnetic properties of the investigated free ions and complexes along the entire actinide series. Overall, the AILFT- and AOM-derived parameters accurately reproduce the multireference electronic structure calculations. The small observed discrepancies with respect to experimentally derived ligand-field parameters are essentially due to an underestimation of the electronic correlation, which arises from both the constrained size of the active space (restricted to the f orbitals) and the limit of the perturbation approach to account for dynamical correlation. Our analysis also provides insight into the metal-ligand covalency trends along the series. Consistent with natural population analysis, the nephelauxetic (Slater-Condon parameters) and relativistic nephelauxetic (spin-orbit-coupling) reductions determined for these complexes indicate a decrease in the covalency along the series. These trends also hold, to varying extents, for the corresponding tetravalent derivatives, as well as the lanthanide analogues.
锕系元素化学在现代研究中越来越受到关注,特别是在能源研究和分子磁学领域。然而,锕系元素的结构 - 功能和结构 - 性质关系尚未像过渡金属那样得到深入研究。在这项工作中,我们报告了对八面体对称性下三价锕系自由离子及其相关六氯化物配合物的光谱、磁性和键合性质的详细从头算研究。使用完全活性空间自洽场计算,随后进行二阶N电子价态微扰理论,包括标量相对论和自旋 - 轨道耦合效应,来研究这些体系的电子结构。通过从头算配体场理论(AILFT)进一步分析计算得到的能量和波函数,并最终通过角重叠模型(AOM)进行化学解释。导出的斯莱特 - 康登和自旋 - 轨道参数使我们能够系统地理顺整个锕系元素系列中所研究的自由离子和配合物的光谱和磁性性质。总体而言,AILFT和AOM导出的参数准确地再现了多参考电子结构计算。观察到的与实验导出的配体场参数的小差异主要是由于电子相关性的低估,这源于活性空间的受限大小(限于f轨道)和微扰方法在考虑动态相关性方面的局限性。我们的分析还深入了解了该系列中金属 - 配体共价性趋势。与自然布居分析一致,为这些配合物确定的电子云扩展(斯莱特 - 康登参数)和相对论电子云扩展(自旋 - 轨道耦合)降低表明该系列中共价性降低。这些趋势在不同程度上也适用于相应的四价衍生物以及镧系类似物。