Department of Materials Engineering, Ben-Gurion University of the Negev, Beer-Sheva, Israel.
Sci Rep. 2013;3:2412. doi: 10.1038/srep02412.
We have determined the magnetic structures of single-crystal thin-films of IrMn3 for the crystallographic phases of chemically-ordered L12, and for chemically-disordered face-centred-cubic, which is the phase typically chosen for information-storage devices. For the chemically-ordered L12 thin-film, we find the same triangular magnetic structure as reported for the bulk material. We determine the magnetic structure of the chemically-disordered face-centred-cubic alloy for the first time, which differs from theoretical predictions, with magnetic moments tilted away from the crystal diagonals towards the face-planes. We study the influence of these two antiferromagnetic structures on the exchange-bias properties of an epitaxial body-centred-cubic Fe layer showing that magnetization reversal mechanism and bias-field in the ferromagnetic layer is altered significantly. We report a change of reversal mechanism from in-plane nucleation of 90° domain-walls when coupled to the newly reported cubic structure towards a rotational process, including an out-of-plane magnetization component when coupled to the L12 triangular structure.
我们已经确定了 IrMn3 单晶薄膜的磁结构,分别对应化学有序的 L12 相和通常用于信息存储设备的化学无序面心立方相。对于化学有序的 L12 薄膜,我们发现了与体材料报道相同的三角形磁结构。我们首次确定了化学无序面心立方合金的磁结构,它与理论预测不同,磁矩偏离晶体对角线朝向面。我们研究了这两种反铁磁结构对外延体心立方 Fe 层的交换偏置特性的影响,表明铁磁层的磁化反转机制和偏置场发生了显著变化。我们报告了当与新报道的立方结构耦合时,磁化反转机制从平面内的 90°畴壁成核变为旋转过程,当与 L12 三角形结构耦合时,包括一个出平面的磁化分量。