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Magnetization reversal in circular vortex dots of small radius

机译:磁化反转的圆形涡点小半径

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摘要

We present a detailed study of the magnetic behavior of Permalloy (Ni80Fe20 alloy) circular nanodots with small radii (30 nm and 70 nm) and different thicknesses (30 nm or 50 nm). Despite the small size of the dots, the measured hysteresis loops manifestly display the features of classical vortex behavior with zero remanence and lobes at high magnetic fields. This is remarkable because the size of the magnetic vortex core is comparable to the dot diameter, as revealed by magnetic force microscopy and micromagnetic simulations. The dot ground states are close to the border of the vortex stability and, depending on the dot size, the magnetization distribution combines attributes of the typical vortex, single domain states or even presents features resembling magnetic skyrmions. An analytical model of the dot magnetization reversal, accounting for the large vortex core size, is developed to explain the observed behavior, providing a rather good agreement with the experimental results. The study extends the understanding of magnetic nanodots beyond the classical vortex concept (where the vortex core spins have a negligible influence on the magnetic behavior) and can therefore be useful for improving emerging spintronic applications, such as spin-torque nano-oscillators. It also delimits the feasibility of producing a well-defined vortex configuration in sub-100 nm dots, enabling the intracellular magneto-mechanical actuation for biomedical applications.
机译:我们提出一个磁性的详细研究坡莫合金的行为(Ni80Fe20合金)循环nanodots小半径(30 nm和70海里)不同的厚度(30 nm或50 nm)。小点的大小,测量滞回线明显显示功能经典涡流行为零剩磁和叶在高磁场。因为磁场的大小显著漩涡核心与点直径揭示了磁力显微镜和微磁模拟。边境附近的涡稳定根据点尺寸,磁化分布结合典型的属性涡、单畴状态甚至礼物磁skyrmions特性相似。点磁化的分析模型逆转,占大漩涡的核心大小,来解释观察到的开发行为,提供一个很好的协议实验结果。了解磁nanodots超越经典涡流(漩涡核心概念对磁旋转有一个微不足道的影响行为),因此可以非常有用等新兴自旋电子应用,改善作为spin-torque nano-oscillators。一个定义良好的生产的可行性涡配置子- 100纳米点,使的胞内magneto-mechanical驱动为生物医学应用。

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