Relativistic Effects in Ligand Field Theory (I): Optical Properties of d1 Atoms in Oh' Symmetry.

IF 4.3 2区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR Inorganic Chemistry Pub Date : 2024-08-12 Epub Date: 2024-07-31 DOI:10.1021/acs.inorgchem.4c01771
Jhon Fredy Pérez-Torres
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Abstract

Ligand field theory, which explains the splitting of degenerate nd atomic orbitals due to static electric fields from point-charge ligands, is rederived using Dirac orbitals instead of Schrödinger orbitals, specifically using the nd3/2 and nd5/2 spinors. This formalism is, to some extent, equivalent to incorporating the spin-orbit interaction either in the nd atomic orbitals or in the ligand field orbitals (e.g., the t2g and eg orbitals arising from Oh symmetry). The spin-orbit interaction is of fundamental importance in the description of the magnetic and optical properties of the 4d and 5d transition metal complexes. Algebraic equations for the relativistic energy levels of d1 octahedral complexes as functions of the spin-orbit coupling constant ξnd and the ligand field parameters Dq and Dp are derived. It is demonstrated that these parameters allow a direct link between the ligand field theory and ab initio relativistic calculations, consistent with the emerging ab initio ligand field theory. The spin-orbit coupling constant and ligand field parameters of ReF6 obtained from optical absorption spectra are carefuly in the light of the new theory.

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配体场理论中的相对论效应 (I):Oh' 对称中 d1 原子的光学特性。
配体场理论解释了由于点电荷配体的静电场而导致的退化 nd 原子轨道分裂,该理论使用狄拉克轨道而不是薛定谔轨道重新推导,特别是使用 nd3/2 和 nd5/2 自旋体。这种形式主义在某种程度上等同于在 nd 原子轨道或配体场轨道(例如由 Oh 对称性产生的 t2g 和 eg 轨道)中加入自旋轨道相互作用。自旋轨道相互作用对于描述 4d 和 5d 过渡金属配合物的磁学和光学性质具有根本性的重要意义。研究得出了 d1 八面体配合物相对论能级的代数方程,它是自旋轨道耦合常数 ξnd 和配体场参数 Dq 和 Dp 的函数。结果表明,这些参数可以将配体场理论与原子序数相对论计算直接联系起来,这与新兴的原子序数配体场理论是一致的。根据新理论,对从光学吸收光谱中得到的 ReF6 的自旋轨道耦合常数和配位场参数进行了仔细研究。
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来源期刊
Inorganic Chemistry
Inorganic Chemistry 化学-无机化学与核化学
CiteScore
7.60
自引率
13.00%
发文量
1960
审稿时长
1.9 months
期刊介绍: Inorganic Chemistry publishes fundamental studies in all phases of inorganic chemistry. Coverage includes experimental and theoretical reports on quantitative studies of structure and thermodynamics, kinetics, mechanisms of inorganic reactions, bioinorganic chemistry, and relevant aspects of organometallic chemistry, solid-state phenomena, and chemical bonding theory. Emphasis is placed on the synthesis, structure, thermodynamics, reactivity, spectroscopy, and bonding properties of significant new and known compounds.
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