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Tools for Predicting the Nature and Magnitude of Magnetic Anisotropy in Transition Metal Complexes: Application to Co(II) Complexes

机译:预测过渡金属配合物中磁各向异性的性质和大小的工具:在Co(II)配合物中的应用

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This work addresses the question of the identification of the excited states that are mainly responsible for the magnitude and nature of the magnetic anisotropy in high-spin mononuclear transition metal complexes. Only few states are actually responsible for the single ion magnetic anisotropy, and these states can be anticipated from rather simple rules. We show that in high-spin complexes atomic selection rules still prevail and that molecular selection rules from the symmetry point group are more selective than those of the double group. The predictive power of these rules is exemplified on a penta-coordinate Co(II) complex investigated with correlated ab initio calculations, including relativistic contributions. The electronic structure of excited states coupled to the ground state through spin-orbit coupling informs us about the nature (either axial or planar) of their contribution to the anisotropy. From this information, it is possible to anticipate the nature and strength of the ligand field and predict the magnetic anisotropy, which may guide the synthesis of improved anisotropic complexes. Such results can also be used to improve the quality of ab initio calculations of the spin Hamiltonian parameters and to reduce the computational cost.
机译:这项工作解决了确定激发态的问题,这些激发态主要负责高自旋单核过渡金属络合物的磁各向异性的大小和性质。实际上,只有少数状态负责单个离子的磁各向异性,而这些状态可以通过相当简单的规则来预期。我们表明,在高自旋复合物中,原子选择规则仍然占优势,并且对称点组的分子选择规则比双组的分子选择规则更具选择性。这些规则的预测能力在以相关的从头算式(包括相对论贡献)进行研究的五坐标Co(II)复杂度中得到了例证。通过自旋轨道耦合耦合到基态的激发态的电子结构向我们介绍了它们对各向异性的贡献的性质(轴向或平面)。根据该信息,可以预期配体场的性质和强度并预测磁各向异性,这可以指导合成改进的各向异性配合物。这样的结果还可以用于改善自旋哈密顿量参数的从头算的质量并减少计算成本。

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