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Termination layer compensated tunnelling magnetoresistance in ferrimagnetic Heusler compounds with high perpendicular magnetic anisotropy

机译:具有高垂直磁各向异性的亚铁磁性Heusler化合物中的终止层补偿隧道磁阻

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摘要

Although high-tunnelling spin polarization has been observed in soft, ferromagnetic, and predicted for hard, ferrimagnetic Heusler materials, there has been no experimental observation to date of high-tunnelling magnetoresistance in the latter. Here we report the preparation of highly textured, polycrystalline Mn3Ge films on amorphous substrates, with very high magnetic anisotropy fields exceeding 7 T, making them technologically relevant. However, the small and negative tunnelling magnetoresistance that we find is attributed to predominant tunnelling from the lower moment Mn-Ge termination layers that are oppositely magnetized to the higher moment Mn-Mn layers. The net spin polarization of the current reflects the different proportions of the two distinct termination layers and their associated tunnelling matrix elements that result from inevitable atomic scale roughness. We show that by engineering the spin polarization of the two termination layers to be of the same sign, even though these layers are oppositely magnetized, high-tunnelling magnetoresistance is possible.
机译:尽管在软的铁磁性材料中观察到了高tuntunling的自旋极化,并且对于硬的亚铁磁性的heusler材料已经观察到了这种现象,但是迄今为止,在后者中还没有实验观察到高tuntunling的磁致电阻。在这里,我们报道了在非晶态衬底上制备具有高度织构的多晶Mn3Ge薄膜的过程,该磁场具有超过7 T的非常高的磁各向异性场,从而使其在技术上具有相关性。但是,我们发现较小的负隧穿磁阻归因于从较低磁矩Mn-Ge终止层(相反地磁化)到较高磁矩Mn-Mn层的主要隧穿。电流的净自旋极化反映了两个不同的终止层及其相关的隧穿矩阵元素的不同比例,这是由不可避免的原子尺度粗糙度引起的。我们表明,通过工程设计两个终端层的自旋极化具有相同的符号,即使这些层被相反地磁化,也可以实现高隧道磁阻。

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