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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Key role of higher order symmetry and electrostatic ligand field design in the magnetic relaxation of low-coordinate Er(III) complexes
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Key role of higher order symmetry and electrostatic ligand field design in the magnetic relaxation of low-coordinate Er(III) complexes

机译:高阶对称性和静电配体场设计在低坐标ER(III)配合物的磁松弛中的关键作用

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The conceptual framework of electrostatic ligand field modulation based on oblate/prolate type electron density of lanthanide ions is one of the most successful approaches to enhance barrier height in lanth-anide- based single-ion magnets. Recently, a tetra coordinated [Er{N(SiMe3)(2)}s(3)Cl]. 2THF (1) complex with an unfavourable ligand field showed slow relaxation of magnetization in zero field and challenges the concept of electrostatic ligand field modulation. To unravel the magnetic relaxation in this complex, we carried out a detailed theoretical investigation on three Er(III) complexes belonging to the same family of single-ion magnets. The CASSCF/PT2 + RASSI-SO approach highlights that the concept of electrostatic ligand field modulation based on oblate/prolate type is still valid in these complexes, and the relaxation dynamics observed can be rationalized by accounting for both the symmetry and geometrical distortions around the Er(III) ion. Using ab initio computed blockade barriers and crystal field analysis, we analysed the key components of the magnetic relaxation. Our study suggests that in these structures, the Er(III) ion shifted out of the triangular plane formed by the three nitrogen donor atoms and this out-of-plane shift (tau) significantly influences the slow-relaxation of magnetization. In order to gain deeper insights into the nature of metal-ligand bonding, and to predict quantitatively the strength of the axial and equatorial ligand field, ELF, QTAIM, and EDA analysis were carried out in these complexes. Our findings highlight that the molecules possessing large barrier height for magnetic relaxation are due to the combined effect of a favourable ligand field and the symmetry around the Er(III) ion. To understand the intricate role of both effects, several robust magneto-structural correlations were developed. Besides, the lanthanide-halogen covalency was also found to play a vital role in controlling the magnetic anisotropy and thus the magnetic relaxation. A near linear trend was observed between the calculated barrier height and the increase in the Er-X covalency as we move from -F to -I. This offers a de novo approach to increase barrier height in mononuclear lanthanide based complexes.
机译:基于扁平/产卵型镧系元素离子的静电配体场调制的概念框架是增强Lanth-阳沿基单离子磁体中的屏障高度的最成功的方法之一。最近,TETRA协调[ER {N(SIME3)(2)} S(3)CL]。 2THF(1)与不利的配体场的复合物在零场中的磁化缓慢放松,挑战静电配体场调制的概念。为了解开这种复合物中的磁性松弛,我们对属于同一家族单离子磁体的三个(III)复合物进行了详细的理论研究。 CASSCF / PT2 + RASSI-SO接近的亮点突出显示基于扁平型/扩展类型的静电配体场调制概念在这些复合物中仍然有效,观察到的松弛动力学可以通过占对称和几何扭曲来合理化ER(iii)离子。使用AB Initio Computed封锁障碍和水晶场分析,我们分析了磁性松弛的关键部件。我们的研究表明,在这些结构中,ER(III)离子移出由三个氮供体原子形成的三角形平面和这种外平面换档(Tau)显着影响磁化的缓慢弛豫。为了更深入地了解金属配体粘合的性质,并在这些配合物中进行轴向和赤道配体场,ELF,Qtaim和EDA分析的定量性地进行定量地。我们的研究结果强调,具有用于磁性弛豫的大屏障高度的分子是由于良好的配体场和ER(III)离子周围的对称性的综合作用。要了解两种效果的复杂作用,开发了几种稳健的磁结构相关性。此外,还发现镧系元素 - 卤素共价在控制磁各向异性并因此在控制磁性各向异性和磁性松弛方面发挥重要作用。当我们从-f移动到-i时,计算的屏障高度和ER-x共和率的增加,观察到近线性趋势。这提供了一种Novo方法,以增加单核镧系基体络合物中的屏障高度。

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