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Electric-field control of spin dynamics during magnetic phase transitions

机译:磁相过渡期间自旋动力学的电场控制

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Controlling magnetization dynamics is imperative for developing ultrafast spintronics and tunable microwave devices. However, the previous research has demonstrated limited electric-field modulation of the effective magnetic damping, a parameter that governs the magnetization dynamics. Here, we propose an approach to manipulate the damping by using the large damping enhancement induced by the two-magnon scattering and a nonlocal spin relaxation process in which spin currents are resonantly transported from antiferromagnetic domains to ferromagnetic matrix in a mixed-phased metallic alloy FeRh. This damping enhancement in FeRh is sensitive to its fraction of antiferromagnetic and ferromagnetic phases, which can be dynamically tuned by electric fields through a strain-mediated magnetoelectric coupling. In a heterostructure of FeRh and piezoelectric PMN-PT, we demonstrated a more than 120% modulation of the effective damping by electric fields during the antiferromagnetic-to-ferromagnetic phase transition. Our results demonstrate an efficient approach to controlling the magnetization dynamics, thus enabling low-power tunable electronics.
机译:控制磁化动力学是开发超快闪光灯和可调谐微波器件的必要条件。然而,先前的研究已经证明了有效磁阻的有限电场调制,一个控制磁化动态的参数。在这里,我们提出了一种方法来操纵阻尼,通过使用由双氧化物散射诱导的大阻尼增强和非局部旋转弛豫方法,其中旋转电流在混合阶段金属合金Ferh中从反铁磁结构域谐振到铁磁性畴。 。 FERH中的这种阻尼增强对其反铁磁和铁磁相的分数敏感,这可以通过电场通过应变介导的磁电联接来动态调谐。在FERH和压电PMN-PT的异质结构中,我们在反铁磁 - 铁磁相转变期间证明了通过电场的有效阻尼的120%的调节。我们的结果表明了控制磁化动态的有效方法,从而实现了低功率可调电子设备。

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