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首页> 外文期刊>Journal of Superconductivity and Novel Magnetism >Optimization of Magnetic Properties and Giant Magnetoimpedance Effect in Nanocrystalline Microwires
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Optimization of Magnetic Properties and Giant Magnetoimpedance Effect in Nanocrystalline Microwires

机译:纳米微丝的磁性和巨磁阻抗效应的优化

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We studied giant magnetoimpedance (GMI) effect, magnetic, and magneto-optic properties of Finemet-type FeCuNbSiB microwires. We observed that GMI effect and magnetic softness of glass-coated microwires produced by the Taylor-Ulitovsky technique can be tailored either controlling magnetoelastic anisotropy of as-prepared FeCuNbSiB microwires or controlling their structure either by heat treatment or changing the fabrication conditions. We observed considerable magnetic softening of studied microwires after annealing. This magnetic softening correlates with the devitrification of amorphous samples. Amorphous Fe-rich microwires exhibited low GMI effect (GMI ratio below 1 %). Considerable enhancement of the GMI effect (GMI ratio up to 100 %) has been observed in heat-treated microwires with nanocrystalline structure. Some of as-prepared Fe-rich magnetic microwires exhibited nanocrystalline structure and GMI ratio up to 45 %. The magneto-optical study demonstrated the existence of helical surface magnetic structure in the as-prepared microwires.
机译:我们研究了Finemet型FeCuNbSiB微线的巨磁阻(GMI)效应,磁和磁光特性。我们观察到,泰勒-乌利托夫斯基技术生产的玻璃涂层微丝的GMI效应和磁软度可以通过控制所制备的FeCuNbSiB微丝的磁弹性各向异性或通过热处理或改变制造条件来控制其结构来定制。我们观察到退火后研究的微丝有相当大的磁性软化。这种磁性软化与无定形样品的失透相关。富含铁的非晶态微丝表现出低的GMI效应(GMI比低于1%)。在具有纳米晶体结构的热处理微线中,已观察到GMI效应显着增强(GMI比例高达100%)。一些准备好的富铁磁性微线表现出纳米晶体结构,GMI比率高达45%。磁光研究表明,所制备的微线中存在螺旋表面磁结构。

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