从能量角度看针状磁纹理表现出的新兴电感

Soju Furuta, Samuel Harrison Moody, Kyohei Kado, Wataru Koshibae, Fumitaka Kagawa
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引用次数: 0

摘要

由于自旋转移力矩效应,空间变化的磁性纹理会表现出电流诱导的动态。当这种磁性系统受到电驱动时,就会产生电场,这就是所谓的新兴电场。特别是,在施加交流电的情况下诱导磁纹理动力学时,涌现电场也会以交流方式出现,尤其是以非相位时间曲线出现,从而表现出电感行为,通常称为涌现电感。在这里,我们展示了磁性纹理在针状状态下表现出的涌现电感,可以用磁性系统中存储的电流诱导能量来解释。我们通过数值计算发现,在所谓的绝热极限中,分别根据涌现电场和电流诱导的磁化失真能量定义的电感值在数量上是一致的。我们的研究结果表明,涌流电感器保留了传统电感器的基本概念,即在电流作用下储存能量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Energetic perspective on emergent inductance exhibited by magnetic textures in the pinned regime

Energetic perspective on emergent inductance exhibited by magnetic textures in the pinned regime
Spatially varying magnetic textures can exhibit electric-current-induced dynamics as a result of the spin-transfer torque effect. When such a magnetic system is electrically driven, an electric field is generated, which is called the emergent electric field. In particular, when magnetic-texture dynamics are induced under the application of an AC electric current, the emergent electric field also appears in an AC manner, notably, with an out-of-phase time profile, thus exhibiting inductor behavior, often called an emergent inductor. Here we show that the emergent inductance exhibited by magnetic textures in the pinned regime can be explained in terms of the current-induced energy stored in the magnetic system. We numerically find that the inductance values defined from the emergent electric field and the current-induced magnetization-distortion energy, respectively, are in quantitative agreement in the so-called adiabatic limit. Our findings indicate that emergent inductors retain the basic concept of conventional inductors; that is, the energy is stored under the application of electric current.
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