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Effective Hamiltonians for correlated narrow energy band systems and magnetic insulators: Role of spin-orbit interactions in metal-insulator transitions and magnetic phase transitions

机译:相关窄能带系统和磁绝缘体的有效哈密顿量:自旋轨道相互作用在金属-绝缘体转变和磁相转变中的作用

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摘要

Using a second-quantized many-electron Hamiltonian, we obtain (a) an effective Hamiltonian suitable for materials whose electronic properties are governed by a set of strongly correlated bands in a narrow energy range and (b) an effective spin-only Hamiltonian for magnetic materials. The present Hamiltonians faithfully include phonon and spin-related interactions as well as the external fields to study the electromagnetic response properties of complex materials and they, in appropriate limits, reduce to the model Hamiltonians due to Hubbard and Heisenberg. With the Hamiltonian for narrow-band strongly correlated materials, we show that the spin-orbit interaction provides a mechanism for metal-insulator transition, which is distinct from the Mott-Hubbard (driven by the electron correlation) and the Anderson mechanism (driven by the disorder). Next, with the spin-only Hamiltonian, we demonstrate the spin-orbit interaction to be a reason for the existence of antiferromagnetic phase in materials which are characterized by a positive isotropic spin-exchange energy. This is distinct from the Neel-VanVleck-Anderson paradigm which posits a negative spin-exchange for the existence of antiferromagnetism. We also find that the Neel temperature increases as the absolute value of the spin-orbit coupling increases. Published by AIP Publishing.
机译:使用第二量子化的多电子哈密顿量,我们获得(a)适用于其电子性能受窄能范围内的一组强相关带控制的材料的有效哈密顿量,以及(b)磁的有效自旋哈密顿量材料。目前的哈密顿量忠实地包含了声子和自旋相关的相互作用以及外部场,以研究复杂材料的电磁响应特性,并且在适当的限制下,由于哈伯德和海森堡,它们简化为哈密顿量模型。对于窄带强相关材料的哈密顿量,我们证明了自旋-轨道相互作用提供了一种金属-绝缘体跃迁的机制,这与莫特-哈伯德(受电子相关性驱动)和安德森机理(受电子驱动)不同。疾病)。接下来,利用仅自旋的哈密顿量,我们证明了自旋-轨道相互作用是在以正各向同性自旋交换能为特征的材料中存在反铁磁相的原因。这与Neel-VanVleck-Anderson范式不同,后者为反铁磁性的存在提出了负自旋交换。我们还发现,Neel温度随着自旋轨道耦合绝对值的增加而增加。由AIP Publishing发布。

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