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Efficient skyrmion transport mediated by a voltage controlled magnetic anisotropy gradient

机译:高效skyrmion运输由电压控制磁各向异性梯度

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Despite the inefficiencies associated with current-induced spin torques, they remain the predominant mode of skyrmion propulsion. In this work, we demonstrate numerically that skyrmions can be transported much more efficiently with a voltage-controlled magnetic anisotropy (VCMA) gradient. An analytical model was developed to understand the underlying skyrmion dynamics on a track under the VCMA conditions. Our calculations reveal that the repulsive skyrmion-edge interaction not only prevents the skyrmion from annihilating but also generates most of the skyrmion propulsion. A multiplexed array of gate electrodes can be used to create discrete anisotropy gradients over a long distance, leading to the formation of a series of translatable skyrmion potential wells. Due to the strong confining potentials, skyrmions are transported at a 70 higher packing density. Finally, we demonstrated that this form of skyrmion propulsion can also be implemented on almost any 2D geometry, providing improved versatility over current-induced methods.
机译:尽管相关的低效率current-induced旋转力矩,他们仍然是主要的skyrmion推进模式。工作中,我们演示skyrmions数值可以更有效地运输吗压控磁各向异性(VCMA)梯度。理解底层skyrmion动力学上跟踪VCMA条件下。排斥skyrmion-edge揭示互动不仅可以防止skyrmion湮灭,但也会产生的大部分skyrmion推进。电极可用于创建离散各向异性梯度在很长一段距离,导致一系列的形成可翻译skyrmion潜在的井。强大的潜力,skyrmions运输包装密度高出70%。最后,我们证明了这种形式的skyrmion推进也可以实现几乎所有的二维几何,提供改善多功能性current-induced方法。

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