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Engineering of Magnetic Softness and Domain Wall Dynamics of Fe-rich Amorphous Microwires by Stress- induced Magnetic Anisotropy

机译:应力感应磁各向异性对富铁非晶微丝的磁软度和畴壁动力学的设计

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摘要

We observed a remarkable improvement of domain wall (DW) mobility, DW velocity, giant magnetoimpedance (GMI) effect and magnetic softening at appropriate stress-annealing conditions. Beneficial effect of stress-annealing on GMI effect and DW dynamics is associated with the induced transverse magnetic anisotropy. An improvement of the circumferential permeability in the nearly surface area of metallic nucleus is evidenced from observed magnetic softening and remarkable GMI effect rising. We assumed that the outer domain shell with transverse magnetic anisotropy associated to stress-annealing induced transverse magnetic anisotropy affects the travelling DW in a similar way as application of transversal bias magnetic field allowing enhancement the DW velocity. Observed decreasing of the half-width of the EMF peak in stress-annealed microwires can be associated to the decreasing of the characteristic DW width. Consequently, stress annealing enabled us to design the magnetic anisotropy distribution beneficial for optimization of either GMI effect or DW dynamics.
机译:在适当的应力退火条件下,我们观察到了畴壁(DW)迁移率,DW速度,巨磁阻抗(GMI)效应和磁软化的显着改善。应力退火对GMI效应和DW动力学的有益作用与所引起的横向磁各向异性有关。通过观察到的磁软化和显着的GMI效应上升,可以证明金属核近表面区域的圆周磁导率得到了改善。我们假设具有与应力退火引起的横向磁各向异性相关的横向磁各向异性的外磁畴壳以与施加横向偏置磁场类似的方式影响行进的DW,从而可以提高DW速度。观察到,应力退火微丝中EMF峰的半峰宽度减小可能与特征DW宽度的减小有关。因此,应力退火使我们能够设计有利于优化GMI效应或DW动力学的磁各向异性分布。

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