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Singlet-triplet energy gaps and the degree of diradical character in binuclear copper molecular magnets characterized by spin-flip density functional theory

机译:双核铜分子磁体中的单态三重态能量间隙和Diradical特征的程度,其特征在于自旋翻转密度功能理论

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Molecular magnets, defined here as organic polyradicals, can be used as building blocks in the fabrication of novel and structurally diverse magnetic light-weight materials. We present a theoretical investigation of the lowest spin states of several binuclear copper diradicals. In contrast to previous studies, we consider not only the energetics of the low-lying states (which are related to the exchangecoupling parameter within the Heisenberg-Dirac-van-Vleck model), but also the character of the diradical states themselves. We use natural orbitals, their occupations, and the number of effectively unpaired electrons to quantify bonding patterns in these systems. We compare the performance of spin-flip time-dependent density functional theory (SF-TDDFT) using various functionals and effective core potentials against the wave function based approach, equation-of-motion spin-flip coupled-cluster method with single and double substitutions (EOM-SF-CCSD). We find that SF-TDDFT paired with the PBE50 and B5050LYP functionals performs comparably to EOM-SF-CCSD, with respect to both singlettriplet gaps and states' characters. Visualization of frontier natural orbitals shows that the unpaired electrons are localized on copper centers, in some cases exhibiting slight through-bond interaction via copper d-orbitals and p-orbitals of neighboring ligand atoms. The analysis reveals considerable interactions between the formally unpaired electrons in the antiferromagnetic diradicaloids, meaning that they are poorly described by the Heisenberg-Dirac-van-Vleck model. Thus, for these systems the experimentally derived exchange-coupling parameters are not directly comparable with the singlettriplet gaps. This explains systematic discrepancies between the computed singlet-triplet energy gaps and the exchange-coupling parameters extracted from experiment.
机译:在此定义为有机多种子石的分子磁铁可用作制造新颖的和结构不同的磁性轻质材料中的构建块。我们展示了几种双核铜Diradical的最低旋转状态的理论研究。与以前的研究相比,我们不仅考虑了低洼状态的能量(与Heisenberg-Diac-Van-Vleck模型中的交换轴来源有关),而且还考虑了Heisenberg-VAN-VAC-VLECK模型中的交换偶联参数),而且还考虑了Diradical状态本身的特征。我们使用自然轨道,它们的职业和有效的未配对电子的数量来定量这些系统中的粘合模式。我们使用针对波函数的方法的各种功能和有效核心电位进行比较旋转时间依赖性密度泛函理论(SF-TDDFT)的性能,具有单个和双重替换的运动方程式旋转耦合簇方法(EOM-SF-CCSD)。我们发现与PBE50和B5050PyP功能配对的SF-TDDFT相互作用,与SinglettRIPLET间隙和状态的字符相对相当于EOM-SF-CCSD。边界天然轨道的可视化表明,未配对的电子在铜中心上局部地,在一些情况下,通过铜D-轨道和相邻配体原子的P轨道表现出轻微的贯通相互作用。该分析揭示了反铁磁性Diradicoids中正式未配对的电子之间具有相当大的相互作用,这意味着它们是由Heisenberg-Dirac-Van-Vleck模型描述的差。因此,对于这些系统,实验衍生的交换耦合参数与单速差距不直接比较。这解释了从实验中提取的计算单态三联能间隙和交换耦合参数之间的系统差异。

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