论文标题
亚波旋转圆柱体诱导的非旋转光传播
Nonreciprocal light propagation induced by a subwavelength spinning cylinder
论文作者
论文摘要
非注射光学设备在轻度操作中进行通信和传感具有广泛的应用。对于高频在片上应用,光学非交流的非磁性机制非常需要。在这里,我们研究了由亚波长旋转缸诱导的介电波导中光传播的非转换性能。我们发现,圆柱体的手性模式可以通过横向自旋轨道相互作用引起与波导的单向耦合,从而导致不同的传播以在相反方向传播的引导波和光学分离。我们揭示了非转录属性对各种系统参数的依赖性,包括模式顺序,旋转速度和耦合距离。结果表明,高阶手性模式和较大的旋转速度通常会导致更强的非肾脏,并且存在一个最佳的气缸 - 波导耦合距离,其中光学隔离达到最大值。我们的工作有助于理解亚波长移动结构中的非肾脏,并可以在集成的光子电路,拓扑光子学和新型的跨曲面中找到应用。
Nonreciprocal optical devices have broad applications in light manipulations for communications and sensing. Non-magnetic mechanisms of optical nonreciprocity are highly desired for high-frequency on-chip applications. Here, we investigate the nonreciprocal properties of light propagation in a dielectric waveguide induced by a subwavelength spinning cylinder. We find that the chiral modes of the cylinder can give rise to unidirectional coupling with the waveguide via the transverse spin-orbit interaction, leading to different transmissions for guided wave propagating in opposite directions and thus optical isolation. We reveal the dependence of the nonreciprocal properties on various system parameters including mode order, spinning speed, and coupling distance. The results show that higher-order chiral modes and larger spinning speed generally give rise to stronger nonreciprocity, and there exists an optimal cylinder-waveguide coupling distance where the optical isolation reaches the maximum. Our work contributes to the understanding of nonreciprocity in subwavelength moving structures and can find applications in integrated photonic circuits, topological photonics, and novel metasurfaces.