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Magnetic coupling in dinuclear Gd complexes

机译:双核G复合物中的磁耦合

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A spin density functional (SDFT) study of carboxylate-bridged and diazenido-bridged dinuclear gadolinium compounds is presented. Calculated magnetic coupling constants for the carboxylate-bridged structures are in good agreement with experimental data, confirming the ability of the broken symmetry approach used in this work to predict magnetic behavior in such compounds. The systematic trend wherein symmetrically bridged complexes are antiferromagnetically coupled and asymmetrically bridged are ferromagnetically coupled is reproduced by the SDFT calculations. The mechanism underlying magnetic coupling in closed- and open-shell dinuclear complexes is described using a perturbative molecular orbital model that focuses the influence of the 4f(7)-5d exchange interaction on molecular orbitals with significant 5d-orbital character for the complex [{[(Me3Si)(2)N](2)(thf)Gd}(2)(N-2)]. Open-shell electronic configurations facilitate strong ferromagnetic coupling, whereas in closed-shell systems antiferromagnetic coupling is usually preferred.
机译:提出了自旋密度泛函(SDFT)研究的羧酸盐桥和二氮烯桥双核clear化合物。羧酸盐桥联结构的计算的磁耦合常数与实验数据非常吻合,证实了这项工作中使用的破坏对称方法预测此类化合物的磁行为的能力。通过SDFT计算再现了对称桥接的复合物反铁磁耦合而非对称桥接的铁磁耦合的系统趋势。使用微扰分子轨道模型描述了封闭和开壳双核复合物中磁耦合的基本机制,该模型重点研究了4f(7)-5d交换相互作用对该复合物具有明显5d轨道特征的分子轨道的影响[{ [(Me 3 Si)(2)N](2)(thf)Gd}(2)(N-2)]。开壳式电子配置有利于强铁磁耦合,而在闭壳系统中,反铁磁耦合通常是首选。

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