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用于传输斯格明子的改进型赛道结构。

An Improved Racetrack Structure for Transporting a Skyrmion.

机构信息

College of Physics and Electronic Engineering, Sichuan Normal University, Chengdu 610101, China.

Department of Physics and Electronic science, Aba Teachers University, Wenchuan 623002, China.

出版信息

Sci Rep. 2017 Mar 30;7:45330. doi: 10.1038/srep45330.

Abstract

Magnetic skyrmions are promising building blocks for next generation data storage due to their stability, small size and extremely low currents to drive them, which can be used instead of traditional magnetic domain walls to store information as data bits in metalic racetrack memories. However, skyrmions can drift from the direction of electron flow due to the Magnus force and thus may annihilate at the racetrack edges, resulting in the loss of information. Here we propose a new skyrmion-based racetrack structure by adding high-K materials (materials with high magnetic crystalline anisotropy) at the edges, which confines the skyrmions in the center region of the metalic racetrack efficiently. This design can overcome both the clogging and annihilation of skyrmions according to our micromagnetic simulation, which occur normally for skyrmions moving on a racetrack under small and large driving currents, respectively. Phase diagrams for skyrmion motion on the proposed racetrack with various values of current density and racetrack edge width have been calculated and given, showing that skyrmions can be driven at a high speed (about 300 m/s) in the racetrack under relatively smaller driving currents. This design offers the possiblity of building an ultrafast and energy-efficient skyrmion transport device.

摘要

磁斯格明子由于其稳定性、小尺寸和极低的驱动电流,有望成为下一代数据存储的基础,可用于替代传统的磁畴壁,将信息作为金属跑道存储器中的数据位存储。然而,由于马格努斯力的作用,斯格明子可能会偏离电子流的方向,从而可能在跑道边缘湮灭,导致信息丢失。在这里,我们通过在边缘添加高 K 材料(具有高磁晶各向异性的材料),提出了一种新的基于斯格明子的跑道结构,有效地将斯格明子限制在金属跑道的中心区域。根据我们的微磁模拟,这种设计可以克服斯格明子在小电流和大电流驱动下在跑道上移动时通常会遇到的堵塞和湮灭。给出了具有不同电流密度和跑道边缘宽度的建议跑道上斯格明子运动的相图,表明斯格明子可以在相对较小的驱动电流下以较高的速度(约 300 m/s)在跑道上驱动。该设计为构建超高速、节能的斯格明子传输器件提供了可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e61/5372177/babf75ecd3cd/srep45330-f1.jpg

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