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Guidelines for Selecting Interlayer Spacers in Synthetic 2D-Based Antiferromagnets from First-Principles Simulations

机译:从第一性原理模拟中选择基于合成2D的反铁磁体中的层间间隔物的指南

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摘要

Following the recent synthesis of graphene–based antiferromagnetic ultrathin heterostructures made of Co and Fe, we analyse the effect of the spacer between both ferromagnetic materials. Using density functional calculations, we carried out an exhaustive study of the geometric, electronic and magnetic properties for intercalated single Co MLs on top of Ir(111) coupled to monolayered Fe through graphene layers ( = 1, 2, 3) or monolayered -BN. Different local atomic arrangements have been considered to model the Moiré patterns expected in these heterostructures. The magnetic exchange interactions between both ferromagnets ( ) are computed from explicit calculations of parallel and anti-parallel Fe/Co inter–layer alignments, and discussed in the context of recent experiments. Our analysis confirms that the robust antiferromagnetic superexchange–coupling between Fe and Co layers is mediated by the graphene spacer through the hybridization of C’s orbitals with Fe and Co’s 3 states. The hybridization is substantially suppressed for multilayered graphene spacers, for which the magnetic coupling between ferromagnets is critically reduced, suggesting the need for ultrathin (monolayer) spacers in the design of synthetic graphene-based antiferromagnets. In the case of –BN, orbitals also mediate (Fe/Co) coupling. However, there is a larger contribution of local ferromagnetic interactions. Magnetic anisotropy energies were also calculated using a fully relativistic description, and show out–of–plane easy axis for all the configurations, with remarkable net values in the range from 1 to 4 meV.
机译:根据最近由Co和Fe制成的基于石墨烯的反铁磁超薄异质结构的合成,我们分析了两种铁磁材料之间的间隔物效应。使用密度泛函计算,我们对通过石墨烯层(=,1、2、3)或单层-BN耦合到单层Fe的Ir(111)上插入的单Co ML的几何,电子和磁性性质进行了详尽的研究。已经考虑了不同的局部原子排列来模拟这些异质结构中预期的莫尔图案。两个铁磁体之间的磁性交换相互作用是通过对平行的和反平行的Fe / Co层间排列的显式计算来计算的,并在最近的实验中进行了讨论。我们的分析证实,Fe和Co层之间强大的反铁磁超交换耦合是通过C轨道与Fe和Co的3种态的杂化作用而由石墨烯间隔基介导的。对于多层石墨烯间隔物,杂化得到了显着抑制,为此,铁磁体之间的磁耦合被严重降低,这表明在基于合成石墨烯的反铁磁体的设计中需要超薄(单层)间隔物。在–BN的情况下,轨道也可以协调(Fe / Co)耦合。但是,局部铁磁相互作用的贡献更大。还使用完全相对论的描述计算了磁各向异性能,并显示了所有配置的平面外易轴,其净值在1至4 meV之间。

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