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Exploitable Magnetic Anisotropy of the Two-Dimensional Magnet CrI3

机译:二维磁铁CRI3的可利用磁各向异性

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Magnetic anisotropy often plays a central role in various static and dynamic properties of magnetic materials. In particular, for two-dimensional (2D) van der Waals materials, as inferred from the Mermin-Wagner theorem, it is an essential prerequisite for stabilizing ferromagnetic order. In this work, we carry out first-principles calculations for a CrI3 monolayer and investigate how its magnetic anisotropy is interrelated to adjustable parameters governing the underlying electronic structure. We explore various routes for controlled manipulation of magnetic anisotropy: chemical adsorption, substitutional doping, optical excitation, and charge transfer through a heterostructure. In particular, the vertical stacking of CrI3 and graphene is noteworthy in regard to controlling magnetic anisotropy: the spin anisotropy axis is switchable between the out-of-plane and in-plane directions, which is accompanied by a variation in the anisotropy energy of up to 500%. Our results show the possibility that dynamic control of the anisotropy of the 2D magnet CrI3 may enable the development of an advanced spintronic device with enhanced energy efficiency and high operation speed.
机译:磁各向异性通常在磁性材料的各种静态和动态性质中起着核心作用。特别地,对于二维(2D)范德瓦尔斯材料,如从Mermin-Wagner定理推断出来,它是稳定铁磁序列的必要先决条件。在这项工作中,我们对CRI3单层进行了第一原理计算,并调查其磁各向异性如何与控制底层电子结构的可调参数相互关联。我们探索各种控制操纵磁各向异性的路线:化学吸附,取代掺杂,光学激发和通过异质结构的电荷转移。特别地,在控制磁各向异性方面,CRI3和石墨烯的垂直堆叠是值得注意的:旋转各向异性轴线是在平面外和面内方向之间切换的,其伴随着up的各向异性能量的变化到500%。我们的结果表明,2D磁铁CRI3的各向异性的动态控制可能使得能够提高能源效率和高操作速度的高级旋转式设备的开发。

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