论文标题

旋转波的旋转波的手部滤波器和多普勒偏移

Handedness-filter and Doppler shift of spin waves in ferrimagnetic domain walls

论文作者

Liu, T. T., Liu, Y., Jin, Z., Hou, Z. P., Chen, D. Y., Fan, Z., Zeng, M., Lu, X. B., Gao, X. S., Qin, M. H., Liu, J. M.

论文摘要

磁性域壁内的自旋波的激发和传播引起了人们的关注,因为它们在自旋和通信应用中具有潜力。除了波浪振幅和频率外,自旋波还具有第三个特征:握手,其操纵肯定引起了人们的关注。我们在这封信中建议,可以通过在铁磁性(FIM)域壁中调整净角动量ΔS来控制低能自旋波激发的手段,这归因于不等于的磁性sublattices。结果表明,自旋波分散体取决于δs和波触时。对于正(负)δs,对于左手(右手)旋转波的无间隙分散体,而右手(左手)旋转波的频率差距出现。因此,FIM壁可以用作低能量自旋波的多胎滤波器,其中只有具有特定手的旋转波才能传播。此外,壁中自旋波激发的能耗损失远低于域内的能量损失,而组速度也快得多,证明了用作自旋波导的域壁的优势。此外,还揭示了FIM壁中电流诱导的自旋波多普勒的移位,并且可以由ΔS控制。这项工作首次揭示了FIM域墙中有趣的自旋波动力学,从而使未来的自旋波应用受益。

Excitation and propagation of spin waves inside magnetic domain walls has received attention because of their potentials in spintronic and communication applications. Besides wave amplitude and frequency, spin-wave has its third character: handedness, whose manipulation is certainly of interest. We propose in this Letter that the handedness of low energy spin-wave excitations can be controlled by tuning the net angular momentum δs in a ferrimagnetic (FiM) domain wall, attributing to the inequivalent magnetic sublattices. The results indicate that the spin-wave dispersion depends on both δs and wave handedness. For a positive (negative) δs, a gapless dispersion is observed for the left-handed (righ-handed) spin waves, while a frequency gap appears for the right-handed (left-handed) spin waves. Thus a FiM wall could serve as a multifold filter of low energy spin-wave in which only spin waves with particular handedness can propagate. Furthermore, the energy consumption loss for spin-wave excitation in the wall is much lower than that inside the domain, while the group velocity is much faster too, demonstrating the advantages of domain walls serving as spin waveguides. Moreover, the current-induced spin-wave Doppler shift in the FiM wall is also revealed, and can be controlled by δs. This work unveils for the first time the interesting spin-wave dynamics in FiM domain walls, benefiting future spin-wave applications.

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