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Exchange-biased Py/CoO vortex structures: Magnetization reversal, cooling-field dependence, and training

机译:交换偏向的Py / CoO涡结构:磁化反转,冷却场依赖性和训练

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In this paper, the magnetization reversal of exchange-biased Py/CoO vortex structures was investigated. The vortex structures were prepared by film deposition onto closely packed arrays of silica particles. By zero field cooling below the Neel temperature of the antiferromagnetic CoO, a so called circular exchange bias can be imprinted. By completing the same cooling process in an applied magnetic field, either a displaced vortex or even a c state can be stabilized, which depends strongly on the CoO layer thickness. A strong athermal training effect mainly on the descending branch after the second loop is observed, which is accompanied by a strong reduction in loop shift, indicating a rearrangement of the CoO spin configuration during reversal. By analyzing the nucleation and annihilation field of the exchange-biased loops, a strong asymmetry is observed, which hints to a magnetization reversal via formation of a distorted viscous vortex. This asymmetry gets more pronounced with increasing CoO layer thickness. Furthermore, we investigated the blocking temperature distribution of the Py/CoO sample series. Below the mean blocking temperature, an increased coercive field is observed when the vortex is cooled in a field larger than the annihilation field compared to zero field cooling, revealing the competition between the vortex state formation and the alignment of spins along the cooling-field direction.
机译:本文研究了交换偏置的Py / CoO涡旋结构的磁化反转。通过将膜沉积在紧密堆积的二氧化硅颗粒阵列上来制备涡旋结构。通过在反铁磁CoO的Neel温度以下进行零场冷却,可以形成所谓的圆形交换偏压。通过在施加的磁场中完成相同的冷却过程,可以稳定地依赖于CoO层的厚度来稳定位移涡流或c状态。观察到第二个循环后,主要在下降分支上有很强的无热训练作用,这伴随着循环移位的强烈减少,表明反转过程中CoO自旋构型的重排。通过分析交换偏置环的成核和an灭磁场,可以观察到强烈的不对称性,这暗示着通过形成扭曲的粘性涡旋而使磁化反转。随着CoO层厚度的增加,这种不对称变得更加明显。此外,我们研究了Py / CoO样品系列的阻断温度分布。低于平均阻塞温度,与零场冷却相比,在大于than灭场的场中冷却涡流时,观察到矫顽场增加,这揭示了涡流状态形成与自旋沿冷却场方向的排列之间的竞争。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第13期|134422.1-134422.6|共6页
  • 作者单位

    Institute of Physics, University of Augsburg, D-86159 Augsburg, Germany;

    Institute of Physics, University of Augsburg, D-86159 Augsburg, Germany;

    Institute of Physics, University of Augsburg, D-86159 Augsburg, Germany,Fraunhofer Institute for Electronic Nano Systems(ENAS), 09107 Chemnitz, Germany;

    Institute of Physics, University of Augsburg, D-86159 Augsburg, Germany;

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