论文标题

固体中磁相互作用的定量理论

Quantitative theory of magnetic interactions in solids

论文作者

Szilva, Attila, Kvashnin, Yaroslav, Stepanov, Evgeny A., Nordström, Lars, Eriksson, Olle, Lichtenstein, Alexander I., Katsnelson, Mikhail I.

论文摘要

在本报告中,我们回顾了磁性材料间交换相互作用的明确计算方法。这涉及通常称为海森堡交换,dzyaloshinskii-moriya相互作用和各向异性对称交换的交换机制。电子结构的微观理论(例如密度功能理论或动力学均值理论与原子间交换)之间的联系已详细介绍。从电子结构计算中提取有效的旋转哈密顿量提取信息的不同方面,考虑到明显较少的原子(1-50)。提出了大量材料的交换相互作用的示例,其中涉及3D时期的重元素,过渡金属之间的合金,Heusler化合物,多层系统以及底物上的叠加层和Adatoms,过渡金属氧化物,4F元素,4F元素,二维材料和分子磁铁中的磁性材料,磁性材料。在可能的情况下,进行了与实验数据进行比较,自然会集中在木剂分散体上。在几种情况下,对相对性的影响进行了审查,动态相关性的重要性也是如此。此处还描述了从平衡条件中处理的理论的发展。评论以对原子间交换的明确计算背后的理论扩展的简短描述,例如描述化学(电荷)顺序和超导性。

In this report we review the method of explicit calculations of interatomic exchange interactions of magnetic materials. This involves exchange mechanisms normally referred to as Heisenberg exchange, Dzyaloshinskii-Moriya interaction and anisotropic symmetric exchange. The connection between microscopic theories of the electronic structure, such as density functional theory or dynamical mean field theory, and interatomic exchange, is given in detail. The different aspects of extracting information for an effective spin Hamiltonian that involves thousands of atoms, from electronic structure calculations considering significantly fewer atoms (1-50) is highlighted. Examples of exchange interactions of a large group of materials is presented, which involves heavy elements of the 3d period, alloys between transition metals, Heusler compounds, multilayer systems as well as overlayers and adatoms on a substrate, transition metal oxides, 4f elements, magnetic materials in two dimensions and molecular magnets. Where possible, a comparison to experimental data is made, that naturally becomes focused on the magnon dispersion. The influence of relativity is reviewed for a few cases, as is the importance of dynamical correlations. Development to theories that handle out of equilibrium conditions is also described here. The review ends with a short description of extensions of the theories behind explicit calculations of interatomic exchange, to non-magnetic situations, e.g. that describe chemical (charge) order and superconductivity.

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