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Direct electric field control of the skyrmion phase in a magnetoelectric insulator

机译:磁电绝缘子中天体离子相的直接电场控制

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摘要

Magnetic skyrmions are topologically protected spin-whirls currently considered as promising for use in ultra-dense memory devices. Towards achieving this goal, exploration of the skyrmion phase response and under external stimuli is urgently required. Here we show experimentally, and explain theoretically, that in the magnetoelectric insulator Cu2OSeO3 the skyrmion phase can expand and shrink significantly depending on the polarity of a moderate applied electric field (few V/μm). The theory we develop incorporates fluctuations around the mean-field that clarifies precisely how the electric field provides direct control over the free energy difference between the skyrmion and the surrounding conical phase. The quantitative agreement between theory and experiment provides a solid foundation for the development of skyrmionic applications based on magnetoelectric coupling.
机译:磁天文离子是受拓扑保护的自旋旋涡,目前被认为可用于超高密度存储设备。为了实现这个目标,迫切需要探索天敌离子的阶段反应和在外部刺激下。在这里,我们通过实验显示并从理论上进行解释,在磁电绝缘子Cu2OSeO3中,取决于适度施加的电场(很少V /μm)的极性,天生离子相可以显着膨胀和收缩。我们开发的理论结合了围绕平均场的波动,该波动精确地阐明了电场如何直接控制天体离子和周围圆锥形相之间的自由能差。理论与实验之间的定量协议为基于磁电耦合的天体离子应用的发展奠定了坚实的基础。

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