论文标题

基于CO/PT的多层的FM/AFM耦合天际的材料系统

Material systems for FM-/AFM-coupled skyrmions in Co/Pt-based multilayers

论文作者

Jia, Hongying, Zimmermann, Bernd, Hoffmann, Markus, Sallermann, Moritz, Bihlmayer, Gustav, Blügel, Stefan

论文摘要

通过基于密度功能理论的系统第一原理计算,我们搜索可以容纳反铁磁性耦合的天空的合适材料。我们专注于FCC堆叠(111)面向的金属$ z $/co/co/pt($ z = 4D $系列:y $ - $ - $ - $ - 贵族金属:cu,ag,au,au,贵族金属,诺布金属:zn和cd)磁性薄膜的磁性多层。我们提出了磁性特性的定量趋势:磁矩,层间交换耦合,自旋态度,dzyaloshinskii-moriya相互作用,磁各向异性和临界温度。我们表明,某些$ z $元素(Zn,Y,Zr,NB,TC,Ru,Rh和Cd)可以在磁性层之间诱导抗磁性互层耦合,并且它们会影响易于的磁化轴。采用多尺度方法,我们将根据$ ab $ $ $ initio $确定的微磁参数转移到微磁能功能上,并搜索一维自旋刺激溶液和二维天空。我们通过数值求解天空剖面的方程来确定天际半径。我们发现了Skyrmion半径的一个分析表达,该表达涵盖了我们的数值结果,并且对于大型微磁参数的模式有效。基于此表达式,我们提出了一个模型,该模型允许从$ ab $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ $ NM SKYRMIONS组成的几个原子层组成的CO膜。我们发现厚度方案,其中膜厚度的微小变化可能会通过数量级改变天空半径。我们估计了天空的大小作为温度的功能,发现尺寸很容易从低温到室温变化。我们建议在铁磁​​性和抗磁性耦合的自旋螺旋和天空系统的有前途的材料系统。

By means of systematic first-principles calculations based on density functional theory we search for suitable materials that can host antiferromagnetically coupled skyrmions. We concentrate on fcc-stacked (111)-oriented metallic $Z$/Co/Pt ($Z=4d$ series: Y$-$Pd, the noble metals: Cu, Ag, Au, post noble metals: Zn and Cd) magnetic multilayers of films of monatomic thickness. We present quantitative trends of magnetic properties: Magnetic moments, interlayer exchange coupling, spin-stiffness, Dzyaloshinskii-Moriya interaction, magnetic anisotropy, and the critical temperature. We show that some of the $Z$ elements (Zn, Y, Zr, Nb, Tc, Ru, Rh, and Cd) can induce antiferromagnetic interlayer coupling between the magnetic Co layers, and that they influence the easy magnetization axis. Employing a multiscale approach, we transfer the micromagnetic parameters determined from $ab$ $initio$ to a micromagnetic energy functional and search for one-dimensional spin-spiral solutions and two-dimensional skyrmions. We determine the skyrmion radius by numerically solving the equation of the skyrmion profile. We found an analytical expression for the skyrmion radius that covers our numerical results and is valid for a large regime of micromagnetic parameters. Based on this expression we have proposed a model that allows to extrapolate from the $ab$ $initio$ results of monatomic films to multilayers with Co films consisting of several atomic layers containing $10\,$nm skyrmions. We found thickness regimes where tiny changes of the film thickness may alter the skyrmion radius by orders of magnitude. We estimated the skyrmion size as function of temperature and found that the size can easily double going from cryogenic to room temperature. We suggest promising material systems for ferromagnetically and antiferromagnetically coupled spin-spiral and skyrmion systems.

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