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Stress tunable microwave absorption of ferromagnetic microwires for sensing applications

机译:铁磁微线的应力可调微波吸收,用于传感应用

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In the present work, we have studied the low field absorption (LFA) at 9 GHz of a set of Co-based glass-coated microwires in the presence of tensile stresses along the wire axis. The results reveal that the absorption profiles bear valve-like features associated with microwave magnetoimpedance effect. The stress applied along the wire axis compensates the reverse effect of magnetic field on absorption. The peak shown in the derivative LFA spectra becomes wider with increasing stress and moves to higher field, corresponding to the magnetization process. A larger ratio of metal to total diameter was found to be favorable to microwave absorption due to the smaller anisotropy and also gave rise to a larger magnetostriction constant. The influences of stress/magnetic field on the absorption as well as the shift of feature stress with wire geometry were discussed in the context of an effective microwire-based sensor design. Calculations of magnetostriction constant by the derived field dependence of anisotropy field were also performed to demonstrate the usefulness of stress tunable microwave absorption characteristics as a research tool.
机译:在目前的工作中,我们研究了在沿线轴存在拉应力的情况下,一组Co基玻璃涂层微线在9 GHz下的低场吸收(LFA)。结果表明,吸收曲线具有与微波磁阻效应相关的阀状特征。沿线轴施加的应力补偿了磁场对吸收的反向作用。随应力增加,导数LFA光谱中显示的峰变宽,并移至更高的磁场,这与磁化过程相对应。发现金属与总直径的较大比例由于较小的各向异性而有利于微波吸收,并且还引起较大的磁致伸缩常数。在有效的基于微线的传感器设计中,讨论了应力/磁场对吸收的影响以及特征应力随线几何形状的变化。还通过导出各向异性场的场依赖性来计算磁致伸缩常数,以证明应力可调微波吸收特性作为研究工具的实用性。

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