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Anisotropy and Field-Sensing Bandwidth in Self-Biased Bismuth-Substituted Rare-Earth Iron Garnet Films: Measurement by Ferromagnetic Resonance Spectroscopy

机译:自偏置铋置换稀土铁石榴石薄膜中的各向异性和场感应带宽:铁磁共振光谱法的测量

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摘要

The high-frequency response of magneto-optic ferrites for field-sensing applications is dictated by the ferromagnetic resonance (FMR) frequency. The FMR frequency can be increased by applying an external biasing field or by tuning the internal anisotropies of the material to provide a self-bias. We report the angular dependence of FMR spectra of bismuth-substituted rare-earth iron garnet thin films to extract their uniaxial and cubic anisotropies. These measurements allow us to estimate the characteristic resonant frequency in the self-bias regime, which is equivalent to the high-frequency limit for magnetic field-sensing in these materials when no external field is applied. We find that the frequency limit estimated by FMR agrees with the measured frequency limit of a magneto-optic field sensor utilizing the same garnet composition.
机译:磁场传感应用中的磁光铁氧体的高频响应由铁磁共振(FMR)频率决定。可以通过施加外部偏置磁场或通过调整材料的内部各向异性以提供自偏置来提高FMR频率。我们报告了铋取代稀土铁石榴石薄膜的FMR光谱的角度依赖性,以提取其单轴和立方各向异性。这些测量结果使我们能够估计自偏置状态下的特征谐振频率,这相当于在不施加外部磁场的情况下这些材料中磁场感应的高频极限。我们发现,由FMR估算的频率极限与利用相同石榴石成分的磁光场传感器的测得频率极限一致。

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