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Tailoring of magnetic properties of giant magnetoresistance spin valves via insertion of ultrathin non-magnetic spacers between pinned and pinning layers

机译:通过在被钉扎层和被钉扎层之间插入超薄非磁性垫片来调节巨磁阻自旋阀的磁性能

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The low-field sensitivity of a giant magnetoresistance (GMR) spin valve can be enhanced by tailoring the bias field of the free layer because this sensitivity and bias field are known to show a strong correlation. In this study, the free-layer bias field is reduced considerably to almost zero via the insertion of an ultrathin nonmagnetic spacer between the pinned layer and the pinning layer. The spacer promotes an increase in the density of Néel walls in the pinned layer. This increase, in turn, induces domain-wall-induced magnetostatic interactions of the free poles formed on the Néel walls inside the free and pinned layers. The magnetostatic interactions result in the formation of flux closures that act as pinning sites during the magnetization reversal process and stabilize the antiparallel magnetization state between the free layer and the pinned layer by suppressing the switching of the free layer from the antiparallel state to the parallel state. Furthermore, the spacer offers an additional advantage of increasing the GMR ratio by inducing a specular scattering effect at its top and bottom interfaces. A highly improved low-field sensitivity of 12.01?mV/mA·Oe is achieved in the sample with a Cu/Pt dual spacer.
机译:可以通过调整自由层的偏置场来增强巨磁阻(GMR)自旋阀的低场灵敏度,因为已知该灵敏度和偏置场显示出很强的相关性。在这项研究中,通过在被钉扎层和被钉扎层之间插入超薄非磁性隔离层,自由层偏置场显着减小到几乎为零。间隔物促进了固定层中Néel壁的密度增加。这种增加反过来会引起在自由层和固定层内部的Néel壁上形成的自由极的畴壁感应静磁相互作用。静磁相互作用导致形成磁通闭合,该磁通闭合在磁化反转过程中充当钉扎点,并通过抑制自由层从反平行状态转换为平行状态来稳定自由层和被钉扎层之间的反平行磁化状态。 。此外,隔离物还具有通过在其顶部和底部界面处引起镜面散射效应来增加GMR比的额外优势。带有Cu / Pt双隔离层的样品的低场灵敏度大大提高了12.01?mV / mA·Oe。

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