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Quasi-periodic magnetization reversal of ferromagnetic nanoparticles induced by torsional oscillations in static magnetic fields

机译:静态磁场扭转振荡诱导的铁磁性纳米粒子的准周期磁化反转

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摘要

In order to reverse the magnetization of small ferromagnetic particles it is necessary to overcome an energy barrier, which is mainly defined by the magnetic anisotropy. Usual reversal stimuli include the application of static or time-dependent external magnetic fields, thermal activation, spin transfer torque, or combinations thereof. Here, we report on repeated, quasi-periodic magnetization reversal in single-domain particles that are exposed to a constant magnetic field perpendicular to the magnet's easy axis. The continuous sequence of reversals is induced by torsional oscillations of the magnet's anisotropy landscape, which are caused by angular oscillations of the magnet's body. In our experiments, a nickel nanowire constitutes both a mechanical resonator and a nanomagnetic sample with uniaxial anisotropy. We measure the transient flexural vibration behavior by electron beam based methods and find strong signatures of periodic magnetization switching between two magnetic states of the nanowire. Our system can be modeled as a driven damped harmonic oscillator under the influence of switchable magnetostatic interactions.
机译:为了逆转小型铁磁性颗粒的磁化,需要克服能量屏障,其主要由磁各向异性定义。通常的逆转刺激包括施加静态或时间依赖性外部磁场,热激活,旋转转移扭矩或其组合。这里,我们报告在单结构域颗粒中的重复,准周期性磁化反转,其暴露于垂直于磁体的恒定磁场。通过磁铁的各向异性景观的扭转振荡引起的连续逆转序列,这是由磁体的角度的角度振荡引起的。在我们的实验中,镍纳米线构成机械谐振器和具有单轴各向异性的纳米磁性样品。我们通过基于电子束的方法测量瞬态弯曲振动行为,并找到纳米线的两个磁态之间的周期磁化切换的强烈签名。我们的系统可以在可切换静磁相互作用的影响下作为驱动的阻尼谐波振荡器进行建模。

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