论文标题
通过多尺度模型的粒状HAMR培养基的磁化动力学
Magnetisation dynamics of granular HAMR media by means of a multiscale model
论文作者
论文摘要
热辅助磁记录(HAMR)技术是最有前途的候选人,可以替代当前的垂直记录范式以达到更高的储存密度。为了更好地了解颗粒介质中的Hamr动力学,我们需要准确地描述磁化动力学,直到接近Curie Point的温度。为此,我们提出了一种基于使用原子计算的运动参数化的运动参数化的多尺度方法。 LLB形式主义描述了有限温度下的磁化动力学,并允许有效模拟大型系统尺寸和长时间尺度。原子模拟为LLB方程提供了所需的温度依赖性输入量,例如平衡磁化和各向异性,可用于捕获详细的磁化动力学。多尺度方法可以克服原子模型的计算局限性在处理大型系统(例如录音轨道)时,同时结合了HAMR过程的基本物理。我们研究了单个热晶粒的磁化动力学作为温度曲线和应用场特性的功能,并针对原子计算测试微磁性结果。我们的结果证明了这里提出的方法的适当性和潜力,在此处,颗粒模型能够重现原子模拟并捕获HAMR培养基的主要特性。
Heat assisted magnetic recording (HAMR) technology represents the most promising candidate to replace the current perpendicular recording paradigm to achieve higher storage densities. To better understand HAMR dynamics in granular media we need to describe accurately the magnetisation dynamics up to temperatures close to the Curie point. To this end we propose a multiscale approach based on the micromagnetic Landau-Lifshitz-Bloch (LLB) equation of motion parametrised using atomistic calculations. The LLB formalism describes the magnetisation dynamics at finite temperature and allows to efficiently simulate large system sizes and long time scales. Atomistic simulations provide the required temperature dependent input quantities for the LLB equation, such as the equilibrium magnetisation and the anisotropy, and can be used to capture the detailed magnetisation dynamics. The multiscale approach makes possible to overcome the computational limitations of atomistic models in dealing with large systems, such as a recording track, while incorporating the basic physics of the HAMR process. We investigate the magnetisation dynamics of a single FePt grain as function of the properties of the temperature profile and applied field and test the micromagnetic results against atomistic calculations. Our results prove the appropriateness and potential of the approach proposed here where the granular model is able to reproduce the atomistic simulations and capture the main properties of a HAMR medium.