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Ferromagnetic Resonance in Electroplated CuBe/FeCoNi and Amorphous CoFeSiB Wires

机译:电镀立方体/ FECONI和无定形COFESIB线的铁磁共振

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Ferromagnetic wires are widely used in microwave technologies. In this work, impedance studies were carried out in a wide range of microwave frequencies (from 0.1 to 20 GHz). By compensating the parameter S-11 for the length of the adapter and the holder, it was possible to ensure the inductive nature of the wire impedance up to the frequency of 14 GHz. As a result, the wire response was described as a lossy inductance, and the inductive resistance of which changes by the Delta X value and the active resistance by Delta R value under the influence of an external constant magnetic field. We were able to approximate Delta X and Delta R changes with the real and imaginary parts of the diagonal component of the magnetic susceptibility tensor, obtained from the Landau-Lifshitz equation with a Gilbert damping term for ferromagnetic resonance (FMR), and determine the FMR parameters in the microwave region. It was also possible to separate the FMR region from the region of such microwave absorption phenomena as magnetoimpedance. An optimized system based on the vector network analyzer ZVA-67 was designed and tested. It allowed to determine experimentally the parameters of magnetoimpedance and FMR of the electroplated FeCoNi/CuBe and rapidly quenched CoFeSiB amorphous wires measured by the same device and in the same configuration in a single-frequency scan. A prototype of the magnetic field sensor has been proposed and tested.
机译:铁磁线广泛用于微波技术。在这项工作中,在广泛的微波频率(0.1至20GHz)中进行阻抗研究。通过补偿参数S-11对于适配器和支架的长度,可以确保线阻抗的电感性质直至14GHz的频率。结果,电线响应被描述为有损电感,并且在外部恒定磁场的影响下,通过Delta X值和ΔR值的激动电阻变化。我们能够近似Delta X和Delta R与磁磁体张量的对角线组件的实部和虚部的变化,从Landau-Lifshitz方程获得与铁磁共振(FMR)的Gilbert阻尼术语,并确定FMR微波区域中的参数。还可以将FMR区域与这种微波吸收现象的区域分离为磁阻率。设计并测试了一种基于向量网络分析仪ZVA-67的优化系统。它允许通过同一装置测量的电镀FeConi /立方体的磁阻率和FMR的参数确定,并在单频扫描中以相同的配置和在相同的配置中测量的快速淬火的CoFesib非晶线。已经提出并测试了磁场传感器的原型。

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