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Mean-field magnetization relaxation in conducting ferromagnets

机译:导电铁磁体中的平均场磁化弛豫

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摘要

Collective ferromagnetic motion in a conducting medium is damped by the transfer of the magnetic moment and energy to the itinerant carriers. We present a calculation of the corresponding magnetization relaxation as a linear-response problem for the carrier dynamics in the effective exchange field of the ferromagnet. In electron systems with little intrinsic spin-orbit interaction, a uniform magnetization motion can be formally eliminated by going into the rotating frame of reference for the spin dynamics. The ferromagnetic damping in this case grows linearly with the spin-flip rate when the latter is smaller than the exchange field and is inversely proportional to the spin-flip rate in the opposite limit. These two regimes are analogous to the "spin-pumping" and the "breathing Fermi-surface" damping mechanisms, respectively. In diluted ferromagnetic semiconductors, the hole-mediated magnetization can be efficiently relaxed to the itinerant-carrier degrees of freedom due to the strong spin-orbit interaction in the valence bands.
机译:导电介质中的集体铁磁运动通过磁矩和能量到巡回载波的传递而受到抑制。我们提出了相应的磁化弛豫的计算,作为铁磁体有效交换场中载流子动力学的线性响应问题。在固有自旋轨道相互作用很小的电子系统中,通过进入自旋动力学的旋转参考系,可以正式消除均匀的磁化运动。在这种情况下,铁磁阻尼在自旋翻转率小于交换场的情况下随自旋翻转率线性增长,并且在相反的范围内与自旋翻转率成反比。这两种方式分别类似于“自旋泵”和“呼吸费米表面”阻尼机制。在稀释的铁磁半导体中,由于价带中很强的自旋轨道相互作用,空穴介导的磁化强度可以有效地放宽到迭代带载子的自由度。

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