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首页> 外文期刊>Journal of Applied Physics >Analytic modeling of dipolar field requirements for robust coupling in a non-identical biaxial two-magnet system
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Analytic modeling of dipolar field requirements for robust coupling in a non-identical biaxial two-magnet system

机译:异双轴双磁体系统中鲁棒耦合的偶极场要求的解析模型

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Magnetic bodies interact with each other through magnetic dipolar fields that depend on the instantaneous magnetization vectors of the coupled magnetic bodies in a system. Previous studies have shown that reliable, deterministic coupling can be achieved in identical two-magnet systems and is a function of the longitudinal and perpendicular components of the dipolar field. In this work, we extend previous work significantly by developing analytic models that map the regions of dipolar field driven magnetization reversal of a non-identical two-magnet system. Models are obtained for mono-domain magnetic bodies with biaxial magnetic anisotropy. The analytic models presented map the necessary requirements for a deterministically coupled two-magnet system. In these deterministic, stable reversals, the two-magnet system stabilizes in an anti-parallel configuration along the natural free-axis of the system, regardless of thermal effects. However, nondeterministic reversals can also occur in certain non-identical systems. These pseudo-reversals occur because only one of the nanomagnets meets the critical field requirements. In this case, the system reversal is a result of thermal drift and therefore complex function system parameters and observation time. We also note that multi-magnet systems may find steady-state orientations away from the free-axis if the perpendicular components of the dipolar field are too large. We present models which accurately map the field magnitudes which result in these meta-stable reversals. Lastly, models to interpret the impact of dipolar coupling on the critical current requirement for spin-transfer-torque driven magnetization switching are also presented in this manuscript. This work greatly expands our understanding of the complex-field interaction in multi-magnet systems and is crucial when evaluating complex magnetic devices. Published by AIP Publishing.
机译:磁性体通过偶极子磁场相互影响,该偶极子磁场取决于系统中耦合磁体的瞬时磁化矢量。先前的研究表明,在相同的两个磁体系统中可以实现可靠的确定性耦合,并且是偶极场的纵向分量和垂直分量的函数。在这项工作中,我们通过开发分析模型来显着扩展先前的工作,该模型绘制了一个由两极不同的双磁铁系统驱动的磁化反转区域。获得具有双轴磁各向异性的单畴磁体的模型。提出的分析模型映射了确定性耦合两磁铁系统的必要要求。在这些确定性的,稳定的逆转中,无论热效应如何,两磁铁系统都沿系统的自然自由轴稳定在反平行配置中。但是,在某些不同的系统中也可能发生不确定的逆转。这些伪反转的发生是因为只有一个纳米磁铁满足了关键的磁场要求。在这种情况下,系统反转是热漂移的结果,因此是复杂的功能系统参数和观察时间。我们还注意到,如果偶极场的垂直分量太大,则多磁体系统可能会在远离自由轴的位置找到稳态取向。我们提出的模型可以准确地绘制导致这些亚稳态逆转的场强。最后,本文还介绍了用于解释偶极耦合对自旋转移转矩驱动的磁化开关的临界电流要求的影响的模型。这项工作极大地扩展了我们对多磁体系统中复杂磁场相互作用的理解,并且在评估复杂的磁性设备时至关重要。由AIP Publishing发布。

著录项

  • 来源
    《Journal of Applied Physics 》 |2018年第2期| 023901.1-023901.11| 共11页
  • 作者单位

    Georgia Inst Technol, Elect & Comp Engn, Atlanta, GA 30332 USA;

    NYU, Elect & Comp Engn, Brooklyn, NY 11201 USA;

    Georgia Inst Technol, Elect & Comp Engn, Atlanta, GA 30332 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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