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Covalency and magnetic anisotropy in lanthanide single molecule magnets: the DyDOTA archetype

机译:镧系单分子磁体的共价性和磁各向异性:DyDOTA原型

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摘要

Lanthanide ions when complexed by polyamino-polycarboxylate chelators form a class of compounds of paramount importance in several research and technological areas, particularly in the fields of magnetic resonance and molecular magnetism. Indeed, the gadolinium derivative is one of the most employed contrast agents for magnetic resonance imaging while the dysprosium one belongs to a new generation of contrast agents for T2-weighted MRI. In molecular magnetism, Single Molecule Magnets (SMMs) containing lanthanide ions have become readily popular in the chemistry and physics communities since record energy barriers to the reversal of magnetization were reported. The success of lanthanide complexes lies in their large anisotropy due to the contribution of the unquenched orbital angular momentum. However, only a few efforts have been made so far to understand how the f-orbitals can be influenced by the surrounding ligands. The outcomes have been rationalized using mere electrostatic perturbation models. In the archetype compound [Na{Dy(DOTA) (H2O)}]·4H2O (Na{DyDOTA}·4H2O) an unexpected easy axis of magnetization perpendicular to the pseudo-tetragonal axis of the molecule was found. Interestingly, a dependency of the orientation of the principal magnetization axis on the simple rotation of the coordinating apical water molecule (AWM) – highly relevant for MRI contrast – around the Dy-OAWM bond was predicted by ab initio calculations, too. However, such a behaviour has been contested in a subsequent paper justifying their conclusions on pure electrostatic assumptions. In this paper, we want to shed some light on the nature of the subtle effects induced by the water molecule on the magnetic properties of the DyDOTA archetype complex. Therefore, we have critically reviewed the structural models already published in the literature along with new ones, showing how the easy axis orientation can dangerously depend on the chosen model. The different computed behaviors of the orientation of the easy axis of magnetization have been rationalized as a function of the energy gap between the ground and the first excited doublet. Magneto-structural correlations together with a mapping of the electrostatic potential generated by the ligands around the Dy(iii) ion through a multipolar expansion have also been used to evidence and quantify the covalent contribution of the AWM orbitals.
机译:镧系元素离子与聚氨基-聚羧酸盐螯合剂形成络合物时,会在一些研究和技术领域,尤其是在磁共振和分子磁性领域中,形成最重要的一类化合物。确实,ado衍生物是磁共振成像中使用最广泛的造影剂之一,而one则属于T2加权MRI的新一代造影剂。在分子磁性中,自从据报道有创纪录的能量逆转磁化障碍以来,含镧系元素离子的单分子磁体(SMM)便在化学和物理领域变得很流行。镧系元素络合物的成功在于其大的各向异性,这归因于未淬灭的轨道角动量。然而,到目前为止,仅作了很少的努力来了解周围的配体如何影响f轨道。仅使用静电扰动模型就已合理化了结果。在原型化合物[Na {DyDOTA(H2O)}]·4H2O(Na {DyDOTA}·4H2O)中,发现了意外的易磁化垂直于分子准四边形轴的轴。有趣的是,同样通过从头算就可以预测到Dy-OAWM键周围主磁化轴方向取决于与MRI对比高度相关的配位顶端水分子(AWM)的简单旋转。但是,这种行为在随后的论文中遭到了争论,证明了他们对纯静电假设的结论是正确的。在本文中,我们想阐明水分子对DyDOTA原型配合物的磁性所产生的微妙影响的性质。因此,我们已经对文献中已经发表的结构模型以及新模型进行了严格的审查,显示出易轴定向如何危险地依赖于所选模型。易磁化轴取向的不同计算行为已根据地面与第一个激发双峰之间的能隙进行了合理化处理。磁结构相关性以及通过多极扩展由Dy(iii)离子周围的配体产生的静电势的映射也已用于证明和量化AWM轨道的共价贡献。

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