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Ultralow magnetic damping of a common metallic ferromagnetic film

机译:普通金属铁磁膜的超磁阻

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摘要

For most magnetic materials, ultralow damping is of key importance for spintronic and spin-orbitronic applications, but the number of materials suitable for charge-based spintronic and spin-orbitronic applications is limited because of magnon-electron scattering. However, some theoretical approaches including the breathing Fermi surface model, generalized torque correlation model, scattering theory, and linear response damping model have been presented for the quantitative calculation of transition metallic ferromagnet damping. For the Fe-Co alloy, an ultralow intrinsic damping approaching 10 ?4 was first theoretically predicted using a linear response damping model by Mankovsky et al. and then experimentally observed by Schoen et al. Here, we experimentally report a damping parameter approaching 1.5 × 10 ?3 for traditional fundamental iron aluminide (FeAl) soft ferromagnets that is comparable to those of 3d transition metallic ferromagnets and explain this phenomenon based on the principle of minimum electron density of states.
机译:对于大多数磁性材料,UltraLow阻尼对于旋转反应和旋转间隔应用的关键重要性,但由于Magnon-Electron散射,适用于基于电荷的旋转和旋转间隙应用的材料数量是有限的。然而,已经介绍了一些理论方法,包括呼吸费米表面模型,广义扭矩相关模型,散射理论和线性响应阻尼模型,用于过渡金属铁磁体阻尼的定量计算。对于Fe-Co合金,使用Mankovsky等人的线性响应阻尼模型首先理论上预测接近的超级固有阻尼10?4。然后由Schoen等人实验观察。在这里,我们通过实验报告用于传统的基础铁铝化物(FEAL)软铁磁体的阻尼参数接近1.5×10?3,其与3D过渡金属铁磁体的软铁磁体相当,并根据状态最小电子密度的原理解释这种现象。

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