Cuyacot Ben Joseph R, Novotný Jan, Berger Raphael J F, Komorovsky Stanislav, Marek Radek
CEITEC - Central European Institute of Technology, Masaryk University, Kamenice 5, 62500, Brno, Czechia.
Department of Chemistry, Faculty of Science, Masaryk University, Kamenice 5, 62500, Brno, Czechia.
Chemistry. 2022 Apr 27;28(24):e202200277. doi: 10.1002/chem.202200277. Epub 2022 Mar 24.
Relativistic effects are known to alter the chemical bonds and spectroscopic properties of heavy-element compounds. In this work, we introduce the concept of spin-orbit (SO) electronegativity of a heavy atom, as reflected by an SO-induced change in the interatomic distance between the heavy atom (HA) and a neighboring light atom (LA). We provide a transparent interpretation of these SO effects by using the concept of spin-orbit electron deformation density (SO-EDD). Spin-orbit coupling at the HA induces rearrangement of the electron density for the scalar-relativistically optimized geometry that, in turn, exerts a new force on the LA. The resulting expansion or contraction of the HA-LA bond depends on the nature and electron configuration of the HA. In addition, we quantify the change in atomic electronegativity induced by SO coupling for a series of hydrides, thereby complementing the SO-EDD picture. The trends in the SO-induced electronegativity and the HA-LA bond length across the periodic table of elements are demonstrated and interpreted, and also linked, intuitively, with the SO-induced NMR shielding at the LA.
众所周知,相对论效应会改变重元素化合物的化学键和光谱性质。在这项工作中,我们引入了重原子的自旋轨道(SO)电负性概念,这通过重原子(HA)与相邻轻原子(LA)之间原子间距离的SO诱导变化来体现。我们通过使用自旋轨道电子变形密度(SO-EDD)的概念对这些SO效应进行了清晰的解释。HA处的自旋轨道耦合会导致对标量相对论优化几何结构的电子密度进行重新排列,进而对LA施加新的力。HA-LA键的由此产生的伸长或缩短取决于HA的性质和电子构型。此外,我们对一系列氢化物中由SO耦合引起的原子电负性变化进行了量化,从而补充了SO-EDD的描述。展示并解释了元素周期表中SO诱导的电负性和HA-LA键长的趋势,并且直观地将其与LA处的SO诱导的核磁共振屏蔽联系起来。