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Hybrid Design for Advanced Magnetic Recording Media : Combining Exchange-Coupled Composite Media with Coupled Granular Continuous Media

机译:先进磁记录介质的混合设计:交换耦合复合介质与耦合颗粒连续介质的结合

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摘要

In order to enhance the performance of advanced granular recording media and understand the physics behind the mechanism of the reversal process, an atomistic spin-dynamics simulation is used to investigate theoretically the magnetic properties and the magnetization-reversal behavior for a composite media design. This model allows us to investigate the effect of the magnetostatic interaction and inter- and intralayer exchange coupling for a realistic system. The composite granular medium investigated consists of hard and soft composite layers in which the grains are well segregated with a continuous capping layer deposited to provide uniform exchange coupling. We present a detailed calculation aimed to reveal the reversal mechanism. In particular, the angular dependence of the critical field is investigated to understand the switching process. The calculations show a complex reversal mechanism driven by the magnetostatic interaction. It is also demonstrated, at high sweep rates consistent with the recording process, that thermal effects lead to a significant and irreducible contribution to the switching field distribution.
机译:为了增强高级颗粒记录介质的性能并了解反转过程机理的物理原理,使用原子自旋动力学仿真理论研究复合介质设计的磁性能和磁化反转行为。该模型使我们能够研究静磁相互作用以及实际系统中层间和层内交换耦合的影响。研究的复合颗粒介质由硬质和软质复合层组成,其中颗粒充分隔离,并沉积有连续的覆盖层以提供均匀的交换耦合。我们提出了详细的计算旨在揭示逆转机制。特别地,研究临界场的角度依赖性以了解切换过程。计算表明,静磁相互作用驱动着复杂的逆转机制。还证明了,在与记录过程一致的高扫描速率下,热效应导致了对开关场分布的显着且不可减少的贡献。

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