通过应力退火调整富铁玻璃包覆微丝的磁阻抗效应和磁软度。
Tailoring of magnetoimpedance effect and magnetic softness of Fe-rich glass-coated microwires by stress- annealing.
作者信息
Zhukova V, Blanco J M, Ipatov M, Churyukanova M, Taskaev S, Zhukov A
机构信息
Dpto. Fisica de Materiales, Fac. Quimicas, UPV/EHU, 20018, San Sebastian, Spain.
Dpto. de Física Aplicada, EUPDS, UPV/EHU, 20018, San Sebastian, Spain.
出版信息
Sci Rep. 2018 Feb 16;8(1):3202. doi: 10.1038/s41598-018-21356-3.
There is a pressing need for improving of the high-frequency magneto-impedance effect of cost-effective soft magnetic materials for use in high-performance sensing devices. The impact of the stress-annealing on magnetic properties and high frequency impedance of Fe-rich glass-coated microwires was studied. Hysteresis loops of Fe-rich microwires have been considerably affected by stress- annealing. In stress-annealed Fe- rich microwire we obtained drastic decreasing of coercivity and change of character of hysteresis loop from rectangular to linear. By controlling stress-annealing conditions (temperature and time) we achieved drastic increasing (by order of magnitude) of giant magnetoimpedance ratio. Coercivity, remanent magnetization, diagonal and of-diagonal magnetoimpedance effect of Fe-rich microwires can be tuned by stress-annealing conditions: annealing temperature and time. Observed experimental results are discussed considering relaxation of internal stresses, compressive "back-stresses" arising after stress annealing and topological short range ordering.
迫切需要提高用于高性能传感设备的经济高效软磁材料的高频磁阻抗效应。研究了应力退火对富铁玻璃包覆微丝磁性能和高频阻抗的影响。富铁微丝的磁滞回线受到应力退火的显著影响。在应力退火的富铁微丝中,我们获得了矫顽力的急剧降低以及磁滞回线特征从矩形到线性的变化。通过控制应力退火条件(温度和时间),我们实现了巨磁阻抗比的急剧增加(数量级)。富铁微丝的矫顽力、剩余磁化强度、对角和非对角磁阻抗效应可以通过应力退火条件(退火温度和时间)进行调节。考虑到内应力的松弛、应力退火后产生的压缩“背应力”和拓扑短程有序,对观察到的实验结果进行了讨论。
相似文献
Sensors (Basel). 2020-3-11
Sensors (Basel). 2019-11-2
Materials (Basel). 2019-8-20
Sensors (Basel). 2019-11-21
引用本文的文献
Sensors (Basel). 2021-12-28
Nanomaterials (Basel). 2020-12-1
Sensors (Basel). 2020-3-11
Materials (Basel). 2020-2-19
本文引用的文献
J Nanosci Nanotechnol. 2012-9
Phys Rev B Condens Matter. 1995-10-1
Phys Rev B Condens Matter. 1987-4-1