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Giant nonlinear damping in nanoscale ferromagnets

机译:纳米铁磁体中的巨型非线性阻尼

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摘要

Magnetic damping is a key metric for emerging technologies based on magnetic nanoparticles, such as spin torque memory and high-resolution biomagnetic imaging. Despite its importance, understanding of magnetic dissipation in nanoscale ferromagnets remains elusive, and the damping is often treated as a phenomenological constant. Here, we report the discovery of a giant frequency-dependent nonlinear damping that strongly alters the response of a nanoscale ferromagnet to spin torque and microwave magnetic field. This damping mechanism originates from three-magnon scattering that is strongly enhanced by geometric confinement of magnons in the nanomagnet. We show that the giant nonlinear damping can invert the effect of spin torque on a nanomagnet, leading to an unexpected current-induced enhancement of damping by an antidamping torque. Our work advances the understanding of magnetic dynamics in nanoscale ferromagnets and spin torque devices.
机译:磁阻尼是基于磁性纳米粒子的新兴技术的关键指标,例如自旋扭矩存储器和高分辨率生物磁成像。尽管它很重要,但对纳米级铁磁体中的磁耗散的理解仍然难以捉摸,并且阻尼通常被视为现象常数。在这里,我们报告了一个巨大的频率相关非线性阻尼的发现,该阻尼极大地改变了纳米级铁磁体对自旋扭矩和微波磁场的响应。这种阻尼机制源自三磁子散射,纳米磁石中磁子的几何限制大大增强了三磁子散射。我们表明,巨大的非线性阻尼可以反转自旋扭矩对纳米磁体的影响,从而通过反阻尼扭矩导致意外的电流感应阻尼增强。我们的工作提高了对纳米级铁磁体和自旋扭矩设备中磁动力学的理解。

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