Department of Applied Physics, University of Tokyo, Tokyo 113-8656, Japan.
Phys Rev Lett. 2012 Jan 6;108(1):017601. doi: 10.1103/PhysRevLett.108.017601. Epub 2012 Jan 5.
We theoretically study spin-wave modes and their intense excitations activated by microwave magnetic fields in the Skyrmion-crystal phase of insulating magnets by numerically analyzing a two-dimensional spin model using the Landau-Lifshitz-Gilbert equation. Two peaks of spin-wave resonances with frequencies of ∼1 GHz are found for in-plane ac magnetic field where distribution of the out-of-plane spin components circulates around each Skyrmion core. Directions of the circulations are opposite between these two modes, and hence the spectra exhibit a salient dependence on the circular polarization of irradiating microwave. A breathing-type mode is also found for an out-of-plane ac magnetic field. By intensively exciting these collective modes, melting of the Skyrmion crystal accompanied by a redshift of the resonant frequency is achieved within nanoseconds.
我们通过数值分析二维自旋模型并使用朗道-李-吉尔伯特方程,从理论上研究了在绝缘磁体的斯格明子晶体相中,微波磁场激活的自旋波模式及其强烈激发。在面内交流磁场中,我们发现了两个自旋波共振峰,其频率约为 1GHz,其中,垂直于各斯格明子核心的面外自旋分量分布呈循环状。这两个模式的循环方向相反,因此光谱对辐照微波的圆偏振具有显著的依赖性。我们还在面外交流磁场中发现了呼吸型模式。通过强烈激发这些集体模式,在纳秒内实现了斯格明子晶体的熔化以及共振频率的红移。