论文标题
旋转波穿过néel域壁的传播
Propagation of spin waves through a Néel domain wall
论文作者
论文摘要
自旋波有可能用作数据传输和处理的新平台,因为它们可以在纳米范围内达到波长,而在Terahertz范围内则可以达到频率。要实现自旋波器设备,必须能够操纵振幅和旋转波的相位至关重要。几种理论且最近的实验工作表明,通过域壁(DW)的传输可以操纵自旋波相。在这里,我们通过微焦点的布里渊散射显微镜($μ$ bls)研究了通过DW通过DW传播的传播。获得的2D自旋波强度图表明,通过NéelDW的自旋波传输受DW中心中拓扑执行的圆形BLOCH线的影响,并且传播方案取决于自旋波频率。在第一个制度中,形成了两个自旋波梁,在圆形BLOCH线上传播,而在第二个机制中,自旋波通过圆形BLOCH线在单个中央梁中传播。相位分辨的$μ$ BLS测量结果揭示了两种状态的传输时通过域壁传输的相移。传输旋转波的微磁建模揭示了其相位前部的变形,在解释测量和设计潜在设备时,需要考虑到这些相位前部的变形。此外,我们通过微磁模拟表明,外部磁场可用于移动DW内的圆形Bloch线并操纵自旋波传播。
Spin waves have the potential to be used as a new platform for data transfer and processing as they can reach wavelengths in the nanometer range and frequencies in the terahertz range. To realize a spin-wave device, it is essential to be able to manipulate the amplitude as well as the phase of spin waves. Several theoretical and recently also experimental works have shown that the spin-wave phase can be manipulated by the transmission through a domain wall (DW). Here, we study propagation of spin waves through a DW by means of micro-focused Brillouin light scattering microscopy ($μ$BLS). The acquired 2D spin-wave intensity maps reveal that spin-wave transmission through a Néel DW is influenced by a topologically enforced circular Bloch line in the DW center and that the propagation regime depends on the spin-wave frequency. In the first regime, two spin-wave beams propagating around the circular Bloch line are formed, whereas in the second regime, spin waves propagate in a single central beam through the circular Bloch line. Phase-resolved $μ$BLS measurements reveal a phase shift upon transmission through the domain wall for both regimes. Micromagnetic modelling of the transmitted spin waves unveils a distortion of their phase fronts which needs to be taken into account when interpreting the measurements and designing potential devices. Moreover, we show, by means of micromagnetic simulations, that an external magnetic field can be used to move the circular Bloch line within the DW and to manipulate spin-wave propagation.