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Control of magnetization reversal by combining shape and magnetocrystalline anisotropy in epitaxial Fe planar nanowires

机译:结合形状和外延Fe平面纳米线的磁晶各向异性控制磁化反转

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摘要

This work presents an analysis of the in-plane magnetization reversal mechanisms of Fe nanowires, with widths from 100nm to 1 νm, fabricated in epitaxial Au(001)/Fe(001)/MgO(001) thin films by means of focused ion and electron beam lithographies, with either positive or negative resist. The experimental results show that the switching mechanisms and hysteresis are almost exclusively functions of the dimensions of the wires and of the Fe intrinsic properties, with minor influence of the specific fabrication route employed upon optimization of nanostructure parameters in terms of crystallinity and morphology, and well defined and reproducible geometry. The reversal processes evolve from wall pinning at low angles between the applied field and the axis of the wires to basically uniform magnetization rotation at high angles. This behaviour can be described in terms of single spin configurations, thus ruling out the formation of multidomain structures even at high angles. The ability to achieve these high quality and well controlled nanowires allowed us to develop an analytical model, based on uniform magnetization configurations considering just the intrinsic Fe properties and the shape and dimensions of the wires. This simple approach provides a very good qualitative and quantitative agreement with the experimental results, thus evidencing the relatively small role of other extrinsic factors in the magnetization processes.
机译:这项工作提出了对Fe纳米线的平面内磁化反转机制的分析,该纳米线通过聚焦离子和电子束光刻,带有正或负抗蚀剂。实验结果表明,切换机制和磁滞几乎完全取决于导线的尺寸和Fe的固有特性,而所采用的特定制造工艺对结晶度和形貌方面的纳米结构参数优化的影响较小,而且定义和可复制的几何。反向过程从在施加的磁场和导线的轴线之间的低角度的壁钉扎发展到大角度的基本均匀的磁化旋转。这种行为可以用单自旋结构来描述,因此即使在高角度下也排除了多畴结构的形成。实现这些高质量和受控良好的纳米线的能力使我们能够基于均匀的磁化构型,仅考虑固有的Fe特性以及导线的形状和尺寸,来开发一个分析模型。这种简单的方法与实验结果提供了很好的定性和定量一致性,从而证明了其他外在因素在磁化过程中的作用相对较小。

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