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Microwave magnetoelectric effect via skyrmion resonance modes in a helimagnetic multiferroic

机译:在铁磁多铁磁中通过天空离子共振模式产生的微波磁电效应

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Magnetic skyrmion, a topologically stable spin-swirling object, can host emergent electromagnetism, as exemplified by the topological Hall effect and electric-current-driven skyrmion motion. To achieve efficient manipulation of nano-sized functional spin textures, it is imperative to exploit the resonant motion of skyrmions, analogously to the role of the ferromagnetic resonance in spintronics. The magnetic resonance of skyrmions has recently been detected with oscillating magnetic fields at 1–2?GHz, launching a search for new skyrmion functionality operating at microwave frequencies. Here we show a microwave magnetoelectric effect in resonant skyrmion dynamics. Through microwave transmittance spectroscopy on the skyrmion-hosting multiferroic crystal Cu2OSeO3 combined with theoretical simulations, we reveal nonreciprocal directional dichroism (NDD) at the resonant mode, that is, oppositely propagating microwaves exhibit different absorption. The microscopic mechanism of the present NDD is not associated with the conventional Faraday effect but with the skyrmion magnetoelectric resonance instead, suggesting a conceptually new microwave functionality.
机译:磁天rm是一种拓扑稳定的自旋旋转物体,可以容纳新兴的电磁现象,例如拓扑霍尔效应和电流驱动的天rm运动。为了实现纳米级功能性自旋纹理的有效操纵,必须利用天体离子的共振运动,类似于自旋电子学中铁磁共振的作用。最近在1-2?GHz的振荡磁场中检测到了Skyrmion的磁共振,从而开始寻找在微波频率下工作的新型Skyrmion功能。在这里,我们显示了共振天体动力学中的微波磁电效应。结合理论模拟,通过对天体离子承载多铁性晶体Cu 2 OSeO 3 的微波透射光谱分析,揭示了共振模式下的不可逆方向二向色性(NDD),即相反传播的微波表现出不同的吸收率。当前NDD的微观机理与常规的法拉第效应无关,而是与天rm子的磁电共振有关,这暗示了概念上新的微波功能。

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