Wang Zhenyu, Yuan H Y, Cao Yunshan, Yan Peng
School of Electronic Science and Engineering and State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu 610054, China.
Institute for Theoretical Physics, Utrecht University, 3584 CC Utrecht, The Netherlands.
Phys Rev Lett. 2022 Sep 2;129(10):107203. doi: 10.1103/PhysRevLett.129.107203.
Quantization effects of the nonlinear magnon-vortex interaction in ferromagnetic nanodisks are studied. We show that the circular geometry twists the spin-wave fields with spiral phase dislocations carrying quantized orbital angular momentum (OAM). Meanwhile, the confluence and splitting scattering of twisted magnons off the gyrating vortex core (VC) generates a frequency comb consisting of discrete and equally spaced spectral lines, dubbed as twisted magnon frequency comb (TMFC). It is found that the mode spacing of the TMFC is equal to the gyration frequency of the VC and the OAM quantum numbers between adjacent spectral lines differ by one. By applying a magnetic field perpendicular to the plane of a thick nanodisk, we observe a magnonic Penrose superradiance inside the cone vortex state, which mimics the amplification of particles scattered from a rotating black hole. It is demonstrated that the higher-order modes of TMFC are significantly amplified while the lower-order ones are trapped within the VC gyrating orbit which manifests as the ergoregion. These results suggest a promising way to generate twisted magnons with large OAM and to drastically improve the flatness of the magnon comb.
研究了铁磁纳米盘中非线性磁振子 - 涡旋相互作用的量子化效应。我们表明,圆形几何结构通过携带量子化轨道角动量(OAM)的螺旋相位位错扭曲自旋波场。同时,扭曲磁振子从旋转涡旋核心(VC)的汇合和分裂散射产生了一个由离散且等间距谱线组成的频率梳,称为扭曲磁振子频率梳(TMFC)。发现TMFC的模式间距等于VC的旋转频率,相邻谱线之间的OAM量子数相差1。通过在厚纳米盘平面垂直方向施加磁场,我们在锥形涡旋态内部观察到磁振子彭罗斯超辐射,它模拟了从旋转黑洞散射的粒子的放大。结果表明,TMFC的高阶模式被显著放大,而低阶模式被困在VC旋转轨道内,表现为能层。这些结果为产生具有大OAM的扭曲磁振子以及大幅提高磁振子梳的平坦度提供了一种有前景的方法。