高合金(Ni80Fe20)纳米点的微磁行为与长宽比的函数关系

IF 3.1 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Computational Materials Science Pub Date : 2024-09-03 DOI:10.1016/j.commatsci.2024.113330
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引用次数: 0

摘要

我们介绍了在自由边界条件下对 Permalloy 纳米点进行零温度微磁模拟计算的结果。纳米点的直径(D)从 20 纳米到 120 纳米不等,厚度(t)从 4 纳米到 120 纳米不等,因此可以获得不同的纵横比 t/D。模拟使用 Ubermag 平台和面向对象微磁框架 (OOMMF) 进行。磁滞回线与长宽比(t/D)有很强的相关性,当长宽比接近一的时候,磁滞曲线会明显变窄。这种现象导致了成核场和湮灭场的形成,从而形成了涡旋型磁纹理,其中心磁芯能够在基底面内移动。此外,通过求解与时间相关的兰道-利夫希茨-吉尔伯特微分方程,我们还研究了磁场每一步的时间动态,其中系统的哈密顿是根据磁晶各向异性、退磁、交换和泽曼贡献定义的。能量图说明了这些能量之间的竞争,它们试图达到各自的平衡状态,从而形成了复杂的能量景观。此外,它们在不同数量级上运行,因此讨论了它们的相对重要性。最终结果总结为相图建议。
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Micromagnetic behavior of permalloy (Ni80Fe20) nanodots as a function of aspect ratio

We present the results of computational micromagnetic simulations at zero temperature under free boundary conditions for Permalloy nanodots. The nanodot’s diameter (D) was varied from 20 to 120 nm, and the thickness (t) ranged from 4 to 120 nm, which allows to obtain different aspect ratios t/D. Simulations were conducted using the Ubermag platform and the Object Oriented Micromagnetic Framework (OOMMF). The hysteresis loops exhibited a strong dependence on the aspect ratio (t/D), which was evident in the narrowing of the hysteresis curves as this ratio approached unity. This phenomenon led to the formation of nucleation and annihilation fields, resulting in the formation of vortex-type magnetic textures with a central core capable of moving within the basal plane. Furthermore, the time dynamics at each step of the magnetic field were addressed by solving the time-dependent Landau–Lifshitz–Gilbert differential equation, where the system’s Hamiltonian is defined in terms of magnetocrystalline anisotropy, demagnetization, exchange, and Zeeman contributions. Energy diagrams illustrate the competition among these energies, attempting to attain their equilibrium state, thereby creating a complex energy landscape. Moreover, they operate on different orders of magnitude, whence their relative importance is discussed. Final results are summarized in a proposal of phase diagrams.

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来源期刊
Computational Materials Science
Computational Materials Science 工程技术-材料科学:综合
CiteScore
6.50
自引率
6.10%
发文量
665
审稿时长
26 days
期刊介绍: The goal of Computational Materials Science is to report on results that provide new or unique insights into, or significantly expand our understanding of, the properties of materials or phenomena associated with their design, synthesis, processing, characterization, and utilization. To be relevant to the journal, the results should be applied or applicable to specific material systems that are discussed within the submission.
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