论文标题

多元非共同irmn $ _3 $/cofe薄膜的交换偏见的起源

The origin of exchange bias in multigranular non-collinear IrMn$_3$/CoFe thin films

论文作者

Jenkins, Sarah, Chantrell, Roy W., Evans, Richard F. L.

论文摘要

由于其超快动态和高数据密度,抗铁磁旋转器具有胜过常规的铁磁设备的潜力。设计这些设备的挑战是控制和检测抗铁磁铁的方向。实现这一目标的最有希望的方法之一是通过交换偏见效应。这在大规模的多型设备中尤其重要。由于以前,由于系统尺寸较大,仅可能进行微磁模拟,因此假定的抗磁性各向异性方向的分布。在这里,我们使用一种原子模型,其中抗磁性各向异性方向的分布自然发生,而交换偏差则是由于抗fiferromagnet中的内在障碍而发生的。我们进行大规模模拟,产生交换偏差的现实价值。我们发现交换偏差的温度依赖性很强,该温度依赖性在阻塞温度下接近零,而由于在滞后循环期间,抗fiferromagnet的超副磁翻转,在阻塞温度下具有峰值的峰值。我们发现从抗铁磁界面的几何模型预测的交换偏见之间存在很大的差异,这表明晶粒边缘效应在多族式交换偏置偏置系统中的重要性。晶粒尺寸的依赖性显示了由于小晶粒的超磁性质与较大晶粒尺寸的界面旋转数量的统计不平衡之间的竞争引起的预期峰。我们的模拟证实了每种谷物中存在单个抗铁磁域的存在。该模型可深入了解交换偏差的物理起源,并为开发优化的纳米级反铁磁性旋转器设备提供了途径。

Antiferromagnetic spintronic devices have the potential to outperform conventional ferromagnetic devices due to their ultrafast dynamics and high data density. A challenge in designing these devices is the control and detection of the orientation of the anti-ferromagnet. One of the most promising ways to achieve this is through the exchange bias effect. This is of particular importance in large scale multigranular devices. Due to the large system sizes, previously, only micromagnetic simulations have been possible, these have an assumed distribution of antiferromagnetic anisotropy directions. Here, we use an atomistic model where the distribution of antiferromagnetic anisotropy directions occurs naturally and the exchange bias occurs due to the intrinsic disorder in the antiferromagnet. We perform large scale simulations, generating realistic values of exchange bias. We find a strong temperature dependance of the exchange bias, which approaches zero at the blocking temperature while the coercivity has a peak at the blocking temeprature due to the superparamagnetic flipping of the antiferromagnet during the hysteresis loop. We find a large discrepancy between the exchange bias predicted from a geometric model of the antiferromagnetic interface indicating the importance of grain edge effects in multigranular exchange biased systems. The grain size dependence shows the expected peak due to a competition between the superparamagnetic nature of small grains and reduction in the statistical imbalance in the number of interfacial spins for larger grain sizes. Our simulations confirm the existence of single antiferromagnetic domains within each grain. The model gives insights into the physical origin of exchange bias and provides a route to developing optimised nanoscale antiferromagnetic spintronic devices.

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