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合理化双核锰(iii)配合物的磁耦合和各向异性的符号和大小。

Rationalizing the sign and magnitude of the magnetic coupling and anisotropy in dinuclear manganese(iii) complexes.

机构信息

IITB-Monash Research Academy, IIT Bombay, Mumbai, India.

出版信息

Dalton Trans. 2018 Aug 29;47(34):11820-11833. doi: 10.1039/c8dt01410h.

DOI:10.1039/c8dt01410h
PMID:29951677
Abstract

We have synthesised twelve manganese(iii) dinuclear complexes, 1-12, in order to understand the origin of magnetic exchange (J) between the metal centres and the magnetic anisotropy (D) of each metal ion using a combined experimental and theoretical approach. All twelve complexes contain the same bridging ligand environment of one μ-oxo and two μ-carboxylato, that helped us to probe how the structural parameters, such as bond distance, bond angle and especially Jahn-Teller dihedral angle affect the magnetic behaviour. Among the twelve complexes, we found ferromagnetic coupling for five and antiferromagnetic coupling for seven. DFT computed the J and ab initio methods computed the D parameter, and are in general agreement with the experimentally determined values. The dihedral angle between the two Jahn-Teller axes of the constituent MnIII ions are found to play a key role in determining the sign of the magnetic coupling. Magneto-structural correlations are developed by varying the Mn-O distance and the Mn-O-Mn angle to understand how the magnetic coupling changes upon these structural changes. Among the developed correlations, the Mn-O distance is found to be the most sensitive parameter that switches the sign of the magnetic coupling from negative to positive. The single-ion zero-field splitting of the MnIII centres is found to be negative for complexes 1-11 and positive for complex 12. However, the zero-field splitting of the S = 4 state for the ferromagnetic coupled dimers is found to be positive, revealing a significant contribution from the exchange anisotropy - a parameter which has long been ignored as being too small to be effective.

摘要

我们合成了十二个锰(III)双核配合物,1-12,以使用实验和理论相结合的方法了解金属中心之间的磁交换(J)和每个金属离子的磁各向异性(D)的起源。所有十二个配合物都含有相同的桥连配体环境,一个μ-氧和两个μ-羧基,这有助于我们研究结构参数(如键距离、键角,特别是 Jahn-Teller 二面角)如何影响磁行为。在这十二个配合物中,我们发现五个具有铁磁耦合,七个具有反铁磁耦合。DFT 计算了 J,从头计算方法计算了 D 参数,并且通常与实验确定的值一致。发现构成 MnIII 离子的两个 Jahn-Teller 轴之间的二面角在确定磁耦合的符号方面起着关键作用。通过改变 Mn-O 距离和 Mn-O-Mn 角度来发展磁结构关系,以了解这些结构变化如何改变磁耦合。在所开发的相关性中,发现 Mn-O 距离是最敏感的参数,它可以将磁耦合的符号从负变为正。MnIII 中心的单离子零场分裂被发现为复合物 1-11 为负,复合物 12 为正。然而,对于铁磁耦合的二聚体,S = 4 态的零场分裂被发现为正,揭示了来自交换各向异性的显著贡献-一个长期以来被忽视的参数,因为它太小而无法有效。

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