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用密度泛函理论和相关的从头算方法对 Co(II)S4 配合物的自旋哈密顿参数进行理论分析。

Theoretical analysis of the spin Hamiltonian parameters in Co(II)S4 complexes, using density functional theory and correlated ab initio methods.

机构信息

Inorganic Chemistry Laboratory, Department of Chemistry, National and Kapodistrian University of Athens, GR-15771 Athens, Greece.

出版信息

Inorg Chem. 2011 Sep 19;50(18):8741-54. doi: 10.1021/ic200299y. Epub 2011 Aug 17.

Abstract

A systematic Density Functional Theory (DFT) and multiconfigurational ab initio computational analysis of the Spin Hamiltonian (SH) parameters of tetracoordinate S = 3/2 Co((II))S(4)-containing complexes has been performed. The complexes under study bear either arylthiolato, ArS(-), or dithioimidodiphosphinato, R(2)P(S)NP(S)R'(2) ligands. These complexes were chosen because accurate structural and spectroscopic data are available, including extensive Electron Paramagnetic Resonance (EPR)/Electron Nuclear Double Resonance (ENDOR) studies. For comparison purposes, the [Co(PPh(3))(2)Cl(2)] complex, which was thoroughly studied in the past by High-Field and Frequency EPR and Variable Temperature, Variable Field Magnetic Circular Dichroism (MCD) spectroscopies, was included in the studied set. The magnitude of the computed axial zero-field splitting parameter D (ZFS), of the Co((II))S(4) systems, was found to be within ~10% of the experimental values, provided that the property calculation is taken beyond the accuracy obtained with a second-order treatment of the spin-orbit coupling interaction. This is achieved by quasi degenerate perturbation theory (QDPT), in conjunction with complete active space configuration interaction (CAS-CI). The accuracy was increased upon recovering dynamic correlation with multiconfigurational ab initio methods. Specifically, spectroscopy oriented configuration interaction (SORCI), and difference dedicated configuration interaction (DDCI) were employed for the calculation of the D-tensor. The sign and magnitude of parameter D was analyzed in the framework of Ligand Field Theory, to reveal the differences in the electronic structures of the investigated Co((II))S(4) systems. For the axial complexes, accurate effective g'-tensors were obtained in the QDPT studies. These provide a diagnostic tool for the adopted ground state configuration (±3/2 or ±1/2) and are hence indicative of the sign of D. On the other hand, for the rhombic complexes, the determination of the sign of D required the SH parameters to be derived along suitably constructed symmetry interconversion pathways. This procedure, which introduces a dynamic perspective into the theoretical investigation, helped to shed some light on unresolved issues of the corresponding experimental studies. The metal hyperfine and ligand super-hyperfine A-tensors of the C(2) [Co{(SPPh(2))(SP(i)Pr(2))N}(2)] complex were estimated by DFT calculations. The theoretical data were shown to be in good agreement with the available experimental data. Decomposition of the metal A-tensor into individual contributions revealed that, despite the large ZFS, the observed significant anisotropy should be largely attributed to spin-dipolar contributions. The analysis of both, metal and ligand A-tensors, is consistent with a highly covalent character of the Co-S bonds.

摘要

已对四配位 S = 3/2 Co((II))S(4)- 配合物的自旋哈密顿 (SH) 参数进行了系统的密度泛函理论 (DFT) 和多组态从头算计算分析。研究中的配合物具有芳基硫醇、ArS(-) 或二硫代咪唑二膦酸酯、R(2)P(S)NP(S)R'(2)配体。选择这些配合物是因为它们具有准确的结构和光谱数据,包括广泛的电子顺磁共振 (EPR)/电子核双共振 (ENDOR) 研究。为了进行比较,还包括了过去通过高场和频率 EPR 以及变温、变场磁圆二色性 (MCD) 光谱学进行了深入研究的 [Co(PPh(3))(2)Cl(2)] 配合物。计算得到的 Co((II))S(4) 系统的轴向零场分裂参数 D (ZFS) 的大小与实验值相差约 10%,前提是通过准简并微扰理论 (QDPT) 与完全活性空间组态相互作用 (CAS-CI) 结合进行属性计算。通过多组态从头算方法恢复动态相关可以提高精度。具体来说,光谱导向组态相互作用 (SORCI) 和专用差分组态相互作用 (DDCI) 用于 D-张量的计算。在配体场理论的框架内分析参数 D 的符号和大小,以揭示研究的 Co((II))S(4) 系统的电子结构差异。对于轴向配合物,在 QDPT 研究中获得了准确的有效 g'-张量。这些提供了用于确定所采用的基态构型 (±3/2 或 ±1/2) 的诊断工具,因此可以指示 D 的符号。另一方面,对于菱形配合物,需要通过适当地构建对称互变途径来推导 SH 参数来确定 D 的符号。该程序从理论研究中引入了动态视角,有助于解决相应实验研究中的一些未解决问题。通过 DFT 计算估计了 C(2) [Co{(SPPh(2))(SP(i)Pr(2))N}(2)] 配合物的金属超精细和配体超精细 A-张量。理论数据与现有实验数据吻合较好。将金属 A-张量分解为各个贡献表明,尽管 ZFS 很大,但观察到的显著各向异性主要归因于自旋偶极贡献。金属和配体 A-张量的分析都与 Co-S 键的高共价性质一致。

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