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Non-volatile electrically-driven repeatable magnetization reversal with no applied magnetic field.

机译:非易失性电动可重复磁化反转,无外加磁场。

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摘要

Repeatable magnetization reversal under purely electrical control remains the outstanding goal in magnetoelectrics. Here we use magnetic force microscopy to study a commercially manufactured multilayer capacitor that displays strain-mediated coupling between magnetostrictive Ni electrodes and piezoelectric BaTiO(3)-based dielectric layers. In an electrode exposed by polishing approximately normal to the layers, we find a perpendicularly magnetized feature that exhibits non-volatile electrically driven repeatable magnetization reversal with no applied magnetic field. Using micromagnetic modelling, we interpret this nominally full magnetization reversal in terms of a dynamic precession that is triggered by strain from voltage-driven ferroelectric switching that is fast and reversible. The anisotropy field responsible for the perpendicular magnetization is reversed by the electrically driven magnetic switching, which is, therefore, repeatable. Our demonstration of non-volatile magnetic switching via volatile ferroelectric switching may inspire the design of fatigue-free devices for electric-write magnetic-read data storage.
机译:在纯电控制下,可重复的磁化反转仍然是磁电领域的重要目标。在这里,我们使用磁力显微镜研究一种商业化生产的多层电容器,该电容器在磁致伸缩Ni电极和基于压电BaTiO(3)的介电层之间显示出应变介导的耦合。在通过抛光大致垂直于各层而暴露的电极中,我们发现了垂直磁化的特征,该特征在不施加磁场的情况下表现出非易失性电驱动的可重复磁化反转。使用微磁建模,我们根据动态进动来解释这种名义上的完全磁化反转,该动态进动是由快速且可逆的电压驱动铁电开关的应变触发的。垂直磁化的各向异性场通过电驱动的磁开关反转,因此是可重复的。我们通过易失性铁电开关进行的非易失性磁性开关演示可以启发设计用于电写磁读取数据存储的无疲劳设备。

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