Curvature-induced magnetization in a <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:mrow><mml:msub><mml:mi>CrI</mml:mi><mml:mn>3</mml:mn></mml:msub></mml:mrow></mml:math> bilayer: Flexomagnetic effect enhancement in van der Waals antiferromagnets
Индуцированная кривизной намагниченность в билислое CrI3: усиление флексомагнитного эффекта в ван-дер-ваальсовых антиферромагнетиках
2024-01-11
SCID: 54.1/4p9d49v6
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CrI3 bilayerfirst-principles calculationsflexomagnetic effectstrain gradient-induced magnetizationvan der Waals antiferromagnet
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Abstract (AI)
The bilayer of ${\mathrm{CrI}}_{3}$ is a prototypical van der Waals (vdW) 2D antiferromagnetic material with magnetoelectric effect. It is not generally known, however, that for symmetry reasons the flexomagnetic effect, i.e., the strain gradient-induced magnetization, is also possible in this system. In the present paper, based on the first-principle calculations, we estimate the flexomagnetic effect to be $200\phantom{\rule{0.16em}{0ex}}{\ensuremath{\mu}}_{B}\ifmmode\cdot\else\textperiodcentered\fi{}\AA{}$, which is two orders of magnitude higher than it was predicted for the referent antiperovskite flexomagnetic material ${\mathrm{Mn}}_{3}\mathrm{GaN}$. The two major factors of flexomagnetic effect enhancement related to the peculiarities of antiferromagnetic structure of vdW magnets are revealed: the strain-dependent ferromagnetic coupling in each layer, and large interlayer distance separating antiferromagnetically coupled ions. Since 2D systems are naturally prone to mechanical deformation, the emerging field of flexomagnetism is of special interest for application in vdW spintronics, and straintronics in particular.
Key Findings
1
Enhancement arises from strain-dependent ferromagnetic coupling within each CrI3 layer.
2
First-principles calculations estimate the flexomagnetic effect in CrI3 bilayer as 200 μB·Å.
3
Flexomagnetism is symmetry-allowed in CrI3 bilayer and relevant for vdW spintronics and straintronics due to 2D systems' susceptibility to deformation.
4
Large interlayer distance between antiferromagnetically coupled ions contributes to flexomagnetic enhancement.
5
This estimated flexomagnetic magnitude is two orders of magnitude larger than that predicted for Mn3GaN.
Research Object
Bilayer CrI3 van der Waals antiferromagnet
Research Subject
Curvature- and strain-gradient-induced magnetization (flexomagnetic effect) in the CrI3 bilayer, including its enhancement mechanisms due to strain-dependent intralayer ferromagnetic coupling and large interlayer separation
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2024-01-11
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