首页> 外文期刊>Journal of chemical theory and computation: JCTC >How Do Heavier Halide Ligands Affect the Signs and Magnitudes of the Zero-Field Splittings in Halogenonickel(II) Scorpionate Complexes? A Theoretical Investigation Coupled to Ligand-Field Analysis
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How Do Heavier Halide Ligands Affect the Signs and Magnitudes of the Zero-Field Splittings in Halogenonickel(II) Scorpionate Complexes? A Theoretical Investigation Coupled to Ligand-Field Analysis

机译:较重的卤化物配体如何影响卤代酮(II)蝎状配合物的零场分裂的迹象和幅度?配体场分析的理论研究

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This work presents a detailed analysis of the physical origin of the zero-field splittings (ZFSs) in a series of high-spin (S = 1) nickel(II) scorpionate complexes Tp*NiX (Tp* = hydrotris(3,5-dimethylpyrazole)borate, X = Cl, Br, I) using quantum chemical approaches. High-frequency and -field electron paramagnetic resonance studies have shown that the complexes with heavier halide ligands (Br, I) have greater magnitudes but opposite signs of the ZFSs compared with the chloro congener (Desrochers, P. J.; Telser, J.; Zvyagin, S. A; Ozarowski, A.; Krzystek, J.; Vicic, D. A. Inorg. Chem. 2006, 45, 8930-8941). To rationalize the experimental finings, quantum chemical calculations of the ZFSs in this Ni" halide series have been conducted. The computed ZFS using wave-function-based ab initio methods (state-averaged CASSCF, NEVPT2, and SORCI) are in good agreement with the experiment. For comparison, density functional theory was only marginally successful. The ligand-field analysis demonstrates that the signs and magnitudes of the ZFSs are subtly determined by the trade-off between the negative contributions from the ~(1,3)A1(1e→2e) transitions relative to the positive contributions from the remaining d-d excited states. The term from ~(1,3)A1(1e→2e) stems from the structural feature that the metal center displaces out of the equatorial plane, and gains the importance when heavier halide ligand is involved.
机译:这项工作提出了一系列高自旋(S = 1)镍(II)蝎形镍配合物Tp * NiX(Tp * = hydrotris(3,5-)的零场分裂(ZFS)的物理起源的详细分析(二甲基吡唑)硼酸酯,X = Cl,Br,I)使用量子化学方法。高频和场电子顺磁共振研究表明,与氯同类物相比,具有较重卤化物配体(Br,I)的配合物具有更大的幅度,但ZFS的符号相反(Desrochers,PJ; Telser,J .; Zvyagin, S.A; Ozarowski,A。; Krzystek,J。; Vicic,DA Inorg.Chem.2006,45,8930-8941)。为了合理化实验结果,已经对该Ni“卤化物系列中的ZFS进行了量子化学计算。使用基于波函数的从头算方法(状态平均CASSCF,NEVPT2和SORCI)计算出的ZFS与为了进行比较,密度泛函理论仅取得了一点点成功,配体场分析表明,ZFS的符号和幅度是由〜(1,3)A1( 1e→2e)相对于其余dd激发态的正贡献而转变。〜(1,3)A1(1e→2e)的术语源于金属中心从赤道平面移出并获得的结构特征涉及较重的卤化物配体时的重要性。

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