论文标题

垂直铁磁层的约瑟夫森连接处的自旋偏振三重电流

Spin-polarized triplet supercurrent in Josephson junctions with perpendicular ferromagnetic layers

论文作者

Aguilar, Victor, Korucu, Demet, Glick, Joseph A., Loloee, Reza, Pratt Jr., W. P., Birge, Norman O.

论文摘要

在某些条件下,相邻层之间具有非共线磁化的三个铁磁层的约瑟夫森连接处具有非共线磁化。自旋三旋转超流的特征是最大超电流的相对较慢的衰减,这是中间铁磁层厚度的函数。在这项工作中,我们专注于中间磁层为具有垂直磁各向异性(PMA)的[CO/PD] $ _ N $多层,而外部两个层具有平面各向异性。我们比较中间PMA层是合成反铁磁铁(PMA-SAF)的连接。我们发现,与PMA交界处相比,PMA-SAF连接中的[Co/pd]双层的数字$ n $的数量增加了迅速的速度。在包含[CO/NI] $ _ N $ PMA多层的连接处观察到类似的行为。我们通过假设每个CO/PD或CO/NI界面充当部分自旋滤波器来对该行为进行建模,以便随着$ n $的增加,PMA交界处的自旋 - 三个超级电流变得更加强烈,而PMA-SAF中的SuperCurrent会随着$ N $的增加而抑制PMA-SAF连接。我们还解决了先前的工作中提出的一个问题,该问题涉及通过名义上的旋转三个连接的传输旋转刺激超级流。我们通过比较与磁性层的相似连接处进行比较的自旋三个连接连接的方法来做到这一点。预计这项工作的结果有助于设计自旋三型约瑟夫森连接处,以用于低温记忆。

Josephson junctions containing three ferromagnetic layers with non-collinear magnetizations between adjacent layers carry spin-triplet supercurrent under certain conditions. The signature of the spin-triplet supercurrent is a relatively slow decay of the maximum supercurrent as a function of the thickness of the middle ferromagnetic layer. In this work we focus on junctions where the middle magnetic layer is a [Co/Pd]$_N$ multilayer with perpendicular magnetic anisotropy (PMA), while the outer two layers have in-plane anisotropy. We compare junctions where the middle PMA layer is or is not configured as a synthetic antiferromagnet (PMA-SAF). We find that the supercurrent decays much more rapidly with increasing the number $N$ of [Co/Pd] bilayers in the PMA-SAF junctions compared to the PMA junctions. Similar behavior is observed in junctions containing [Co/Ni]$_N$ PMA multilayers. We model that behavior by assuming that each Co/Pd or Co/Ni interface acts as a partial spin filter, so that the spin-triplet supercurrent in the PMA junctions becomes more strongly spin-polarized as $N$ increases while the supercurrent in the PMA-SAF junctions is suppressed with increasing $N$. We also address a question raised in a previous work regarding how much spin-singlet supercurrent is transmitted through our nominally spin-triplet junctions. We do that by comparing spin-triplet junctions with similar junctions where the order of the magnetic layers has been shuffled. The results of this work are expected to be helpful in designing spin-triplet Josephson junctions for use in cryogenic memory.

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