论文标题

基于Dzyaloshinskii-Moriya相互作用的线性响应理论

Linear Response Based Theories for Dzyaloshinskii-Moriya Interactions

论文作者

Solovyev, I. V.

论文摘要

我们研究了各种基于线性响应的技术的能力,用于从第一原理电子结构计算中提取反对称Dzyaloshinskii-Moriya(DM)相互作用的参数。为了这些目的,我们进一步阐述了Sandratskii [Phys。 Rev. B 96,024450(2017)],该版本指出,DM矢量的$ z $分量可以通过仅保留旋转轨道(SO)耦合的自旋 - 径向部分来计算。我们从磁力定理(MFT)开始分析,该磁力定理依赖于额外的近似值,从而导致交换相互作用对响应张量的线性依赖性,并将其与根据反响应的确切方法进行比较。我们提出了将这些配体旋转的效果转移到局部旋转之间有效相互作用的参数中的下折过程。这些技术适用于一系列CRCL $ _3 $和CRI $ _3 $的材料,包括散装,单层,双层和三层系统。特别是,我们讨论了如何通过表面或电场的反转对称性破裂引起的DM相互作用。只要在CR $ 3D $状态之间的响应张量计算中考虑重配体原子的SO相互作用,MFT似乎是DM相互作用的良好近似值,与各向同性交换相反,与同型交换相反,MFT的MFT和确切的方法提供了完全不同的描述。最后,我们讨论了我们对DM相互作用的计算提出的其他技术的相关性。特别是,我们认为DM相互作用的自旋电流模型可以源自基于MFT的表达,并且是双重交换的相对论对应物,该模型发生在金属系统中,以无限交换分裂的极限。

We investigate abilities of various linear response based techniques for extracting parameters of antisymmetric Dzyaloshinskii-Moriya (DM) interactions from the first-principles electronic structure calculations. For these purposes, we further elaborate the idea of Sandratskii [Phys. Rev. B 96, 024450 (2017)], which states that $z$ component of the DM vector can be computed by retaining only spin-diagonal part of the spin-orbit (SO) coupling. We start our analysis with the magnetic force theorem (MFT), which relies on additional approximations resulting in the linear dependence of the exchange interactions on the response tensor, and compare it with the exact approach formulated in terms of the inverse response. We propose the downfolding procedure transferring the effect of these ligand spins into parameters of effective interactions between the localized spins. These techniques are applied for the series of CrCl$_3$ and CrI$_3$ based materials, including bulk, monolayer, bilayer, and three-layer systems. Particularly, we discuss how the DM interactions are induced by the inversion symmetry breaking at the surface or by the electric field. As long as the SO interaction of the heavy ligand atoms is taken into account in the calculations of the response tensor between the Cr $3d$ states, the MFT appears to be a good approximation for the DM interactions, being in contrast with the isotropic exchange, for which MFT and the exact method provide quite a different description. Finally, we discuss the relevance of our approach to other techniques ever proposed for calculations of the DM interactions. Particularly, we argue that the spin-current model for the DM interactions can be derived from the MFT based expression and is the relativistic counterpart of the double exchange, occurring in metallic systems in the limit of infinite exchange splitting.

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