首页> 外文期刊>Bulletin of the Chemical Society of Japan >Hubbard and Heisenberg Models for Four-Site Four-Electron Systems. Group-Theoretical Interrelationships and Applications to Multinuclear Transition-Metal Clusters
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Hubbard and Heisenberg Models for Four-Site Four-Electron Systems. Group-Theoretical Interrelationships and Applications to Multinuclear Transition-Metal Clusters

机译:四站点四电子系统的Hubbard和Heisenberg模型。群体理论的相互关系及其在多核过渡金属簇中的应用

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Hubbard models for four-site four-electron {4,4} systems are analytically solved to elucidate group-theoretical interrelationships between effective model Hamiltonians for radical clusters, metal clusters, Cu_4O_4, and so on. The group operations used for this purpose are permutation group (S_N), spatial symmetry (P_N), spin rotation (S), and time-reversal (T). The magnetic (color) group (T * S) is utilized for determination of the magnetic symmetry of spin structures obtained on the basis of the classical Heisenberg model; namely a vector representation of radical spins. The magnetic double group theory (T * S * P_N) is used for characterization of general Hartree-Fock solutions (GHF) involving axial, helical, and torsional spin density waves for {4,4} systems. The spin-optimized SCF solutions are constructed from the spin projection of the GHF solutions (T * S * P_N) by the use of the permutation symmetry (S_N). The S_N group is also used for the quantum Heisenberg model for {4,4} systems. In order to show the interrelationships between these model Hamiltonians, the electronic states of {4,4} systems with the D_(4h), T_d, and D_(3h) symmetries are constructed by the use of the magnetically ordered general spin orbitals which have been determined by the GHF calculations. The spin-optimized SCF solutions for {4,4} systems examined here are equivalent to the full CI wavefunctions satisfying both spatial and spin symmetries. The relative contributions of the spin polarization (SP) and doubly excited configurations in the GHF, projected GHF and SO-SCF wavefunctions are clarified to elucidate possible mechanisms of spin alignments and antiferromagnetic spin correlations. Implications of these computational results are discussed in relation to quantum and classical representations of spin alignments in molecular magnetic materials such as iron-sulfur clusters. Molecular magnets having helical and torsional spin structures are designed and discussed in relation to the most general spin alignment in the species.
机译:通过解析求解四位四电子{4,4}系统的Hubbard模型,以阐明自由基团簇,金属团簇,Cu_4O_4等的有效模型哈密顿量之间的组理论相互关系。为此目的使用的组操作是置换组(S_N),空间对称性(P_N),自旋旋转(S)和时间反转(T)。磁性(彩色)基团(T * S)用于确定根据经典海森堡模型获得的自旋结构的磁性对称性;即自由基自旋的向量表示。磁性双群理论(T * S * P_N)用于表征一般的Hartree-Fock解(GHF),其中涉及{4,4}系统的轴向,螺旋和扭转自旋密度波。通过使用置换对称性(S_N),根据GHF解决方案的自旋投影(T * S * P_N)构建自旋优化的SCF解。 S_N组也用于{4,4}系统的量子Heisenberg模型。为了显示这些模型哈密顿量之间的相互关系,{4,4}系统具有D_(4h),T_d和D_(3h)对称性的电子状态通过使用具有由GHF计算确定。此处检查的{4,4}系统的自旋优化SCF解决方案等效于满足空间和自旋对称性的完整CI波函数。明确了自旋极化(SP)和GHF中双激发构型,预计的GHF和SO-SCF波函数的相对贡献,以阐明自旋排列和反铁磁自旋相关性的可能机理。这些计算结果的含义与分子磁性材料(如铁硫簇)中自旋排列的量子和经典表示有关。设计并讨论了具有螺旋和扭转自旋结构的分子磁体,涉及物种中最普遍的自旋排列。

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