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Magnetic Anisotropy and Mechanism of Magnetic Relaxation in Er(III) Single-Ion Magnets

机译:Er(III)单离子磁体的磁各向异性和磁弛豫机理

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Magnetic anisotropy is a key component in the design of singlemolecule magnets (SMMs) possessing a large barrier height for magnetization reversal. Lanthanide-based SMMs are the most promising candidates in this arena as they offer a large magnetic anisotropy due to the presence of strong spin-orbit coupling. Among lanthanides, Er(III) complexes are gaining attention in the area of SMMs, because of their intriguing magnetic properties and attractive blocking temperatures. Here, we have undertaken detailed ab initio calculations on four structurally diverse Er(III) SMMs to shed light on how the magnetic anisotropy is influenced by the role of symmetry and structural distortions. The employed CASSCF+RASSI calculations have offered rationale for the observed differences in the estimated U_(eff) values for the studied complexes and also offered hints to the mechanism of magnetic relaxation. The differences in the mechanism of magnetic relaxations are further analyzed based on the Er-ligand interactions, which is obtained by analyzing the charges, densities, luminescent behavior and the frontier molecular orbitals. Our calculations, for the first time, have highlighted the importance of high symmetry environment and ligand donor strength in obtaining large Ueff values for the Er(III) complexes. We have examined these possibilities by modeling several structures with variable coordination numbers and point group symmetry. These results signify the need of a detailed understanding on the shape of the anisotropy and the point group symmetry in order to achieve large U_(eff) values in Er(III) single-ion magnets.
机译:磁各向异性是单分子磁体(SMM)设计中的关键组成部分,该磁体具有较大的势垒高度,可以反转磁化。基于镧系元素的SMM在该领域是最有前途的候选者,由于存在强自旋轨道耦合,它们具有较大的磁各向异性。在镧系元素中,Er(III)络合物因其吸引人的磁性和诱人的阻断温度而在SMM领域引起了关注。在这里,我们对四种结构多样的Er(III)SMM进行了详细的从头计算,以阐明对称性和结构畸变如何影响磁各向异性。所采用的CASSCF + RASSI计算为研究的复合物的估计U_(eff)值中观察到的差异提供了理论依据,也为磁弛豫机理提供了提示。基于Er-配体相互作用,进一步分析了磁弛豫机理的差异,这是通过分析电荷,密度,发光行为和前沿分子轨道获得的。我们的计算首次强调了高对称性环境和配体供体强度对于获得Er(III)配合物的大Ueff值的重要性。我们通过对具有可变配位数和点群对称性的几种结构进行建模,研究了这些可能性。这些结果表明需要对各向异性的形状和点群对称性有详细的了解,以便在Er(III)单离子磁体中获得较大的U_(eff)值。

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