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Metal–ligand pair anisotropy in a series of mononuclear Er–COT complexes

机译:一系列单核Er-COT配合物中的金属-配体对各向异性

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摘要

Synthetic control of the crystal field has elevated lanthanides to the forefront of single-molecule magnet (SMM) research, yet the resultant strong, predictable single-ion anisotropy has thus far not translated into equally impressive molecule-based magnets of higher dimensionality. This roadblock arises from the dual demands made of the crystal field: generate anisotropy and facilitate magnetic coupling. Here we demonstrate that particular metal–ligand pairs can dominate the single-ion electronic structure so fully that the remaining coordination sphere plays a minimal role in the magnitude and orientation of the magnetic anisotropy. This Metal–Ligand Pair Anisotropy (MLPA) effectively separates the crystal field into discrete components dedicated to anisotropy and magnetic coupling. To demonstrate an MLPA building unit, we synthesized four new mononuclear complexes that challenge the electronic structure of the iconic lanthanocene ([Ln(COT)2]+; COT2– = cyclooctatetraene dianion) complex which is known to generate strong anisotropy with Ln = Er3+. Variation in symmetry and coordination strength for Er(COT)I(THF)2 (THF = tetrahydrofuran) (>1), Er(COT)I(Py)2 (Py = pyridine) (>2), Er(COT)I(MeCN)2 (MeCN = acetonitrile) (>3), and Er(COT)(Tp*) (Tp* = tris(3,5-dimethyl-1-pyrazolyl)borate) (>4) shows that the Er–COT unit stabilizes anisotropy despite deliberate de-optimization. All four half-sandwich complexes display SMM behavior with effective energy barriers of Ueff = 95.6(9), 102.9(3.1), 107.1(1.3), and 133.6(2.2) cm–1 for >1–4 by a multi-relaxation-process fitting. More importantly, the basic state splittings remain intact and the anisotropy axes are within several degrees of normal to the COT2– ring according to complete active space self-consistent field (CASSCF) calculations. Further investigation of the MLPA conceptual framework is warranted as it can provide building units with well-defined magnetic orientation and strength. We envision that the through-barrier processes observed herein, such as quantum tunneling, can be mitigated by formation of larger clusters and molecule-based materials.
机译:晶体场的合成控制将镧系元素提高到了单分子磁体(SMM)研究的最前沿,但是由此产生的强大的,可预测的单离子各向异性迄今为止还没有转化为同样引人注目的高尺寸分子基磁体。这个障碍来自对晶体场的双重要求:产生各向异性并促进磁耦合。在这里,我们证明了特定的金属-配体对可以完全控制单离子电子结构,从而使剩余的配位球在磁各向异性的大小和方向上起着最小的作用。这种金属-配体对各向异性(MLPA)可将晶体场有效地分离为离散的成分,这些成分专门用于各向异性和磁耦合。为了演示MLPA的构建单元,我们合成了四个新的单核配合物,它们挑战了经典镧系([Ln(COT)2] + ; COT 2 – =已知会产生强各向异性的Ln = Er 3 + 化合物。 Er(COT)I(THF)2(THF =四氢呋喃)(> 1 ),Er(COT)I(Py)2(Py =吡啶)(> 2 ),Er(COT)I(MeCN)2(MeCN =乙腈)(> 3 )和Er(COT)(Tp *)(Tp * = tris(3,5 -二甲基-1-吡唑基)硼酸酯(> 4 )表明,尽管有意地进行了优化,但Er-COT单元仍稳定了各向异性。对于>,所有四个半三明治复合物均显示SMM行为,有效能垒为Ueff = 95.6(9),102.9(3.1),107.1(1.3)和133.6(2.2)cm –1 1–4 通过多松弛过程拟合。更重要的是,根据完整的活动空间自洽场(CASSCF)计算,基本状态分裂保持完整,并且各向异性轴在与COT 2-环垂直的几度之内。可以对MLPA概念框架进行进一步研究,因为它可以为建筑单元提供明确定义的磁场方向和强度。我们设想可以通过形成较大的团簇和基于分子的材料来减轻本文中观察到的贯穿势垒过程,例如量子隧穿。

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