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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Calculation of zero-field splittings, g-values, and the relativistic nephelauxetic effect in transition metal complexes. Application to high-spin ferric complexes [Review]
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Calculation of zero-field splittings, g-values, and the relativistic nephelauxetic effect in transition metal complexes. Application to high-spin ferric complexes [Review]

机译:过渡金属配合物中零场分裂,g值的计算和相对论性肾上腺素作用。在高旋转铁络合物中的应用[综述]

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摘要

Equations are derived and discussed that allow the computation of zero-field splitting (ZFS) tensors in transition metal complexes for any value of the ground-state total spin S. An effective Hamiltonian technique is used and the calculation is carried to second order for orbitally nondegenerate ground states. The theory includes contributions from excited states of spin S and S +/- 1. This makes the theory more general than earlier treatments. Explicit equations are derived for the case where all states are well described by single-determinantal wave functions, for example restricted open shell Hartree-Fock (HF) and spin-polarized HF or density functional (DFT) calculation schemes. Matrix elements are evaluated for many electron wave functions that result from a molecular orbital (MO) treatment including configuration interaction (CI). A computational implementation in terms of bonded functions is outlined. The problem of ZFS in high-spin ferric complexes is treated at some length, and contributions due to low-symmetry distortions, anisotropic covalency, charge-transfer states, and ligand spin-orbit coupling are discussed. ROHF-INDO/S-Cl results are presented for FeCl4- and used to evaluate the importance of the various terms. Finally, contributions to the experimentally observed reduction of the metal spin-orbit coupling constants (the relativistic nephelauxetic effect) are discussed. B3LYP and Hartree-Fock calculations for FeCl4- are used to characterize the change of the iron 3d radial function upon complex formation. It is found that the iron 3d radial distribution function is significantly expanded and that the expansion is anisotropic. This is interpreted as a combination of reduction in effective charge on the metal 3d electrons (central field covalence) together with expansive promotion effects that are a necessary consequence of chemical bond formation. The [r(-3)](3d) values that are important in the interpretation of magnetic data are up to 15% reduced from their free-ion value before any metal-ligand orbital mixing (symmetry-restricted covalency) is taken into account. Thus the use of free-ion values for spin-orbit coupling and related constants in the analysis of experimental data leads to values for MO coefficients that overestimate the metal-ligand covalency. [References: 108]
机译:推导并讨论了方程,该方程允许对于任何基态总自旋S值,计算过渡金属配合物中的零场分裂(ZFS)张量。使用了有效的哈密顿技术,该计算被用于二阶轨道非简并基态。该理论包括自旋S和S +/- 1的激发态的贡献。这使该理论比以前的方法更具通用性。对于所有状态都可以通过单行波函数很好地描述的情况,可以得出明确的方程式,例如受限的开壳式Hartree-Fock(HF)和自旋极化HF或密度函数(DFT)计算方案。对基质元素的许多电子波功能进行了评估,这些功能是由分子轨道(MO)处理(包括构型相互作用(CI))产生的。概述了结合函数的计算实现。高旋转铁络合物中的ZFS问题已得到一定程度的解决,并讨论了由于低对称畸变,各向异性共价,电荷转移态和配体自旋轨道耦合引起的贡献。给出了FeCl4-的ROHF-INDO / S-Cl结果,并用于评估各个术语的重要性。最后,讨论了对实验观察到的金属自旋轨道耦合常数的减小(相对论性肾上腺皮质激素作用)的贡献。 FeCl4-的B3LYP和Hartree-Fock计算用于表征复合物形成时铁3d径向函数的变化。发现铁3d径向分布函数显着扩展,并且该扩展是各向异性的。这被解释为金属3d电子上有效电荷的减少(中心电场价)与化学键形成必不可少的扩展促进作用的结合。在考虑任何金属-配体轨道混合(对称性限制的共价)之前,在解释磁性数据中很重要的[r(-3)](3d)值比其自由离子值降低了15%。 。因此,在实验数据分析中使用自由离子值进行自旋轨道耦合和相关常数会导致MO系数值过高地估计金属-配体的共价性。 [参考:108]

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