论文标题
表面麦克斯韦波浪中的隐藏对称性保护和拓扑
Hidden Symmetry Protection and Topology in Surface Maxwell Waves
论文作者
论文摘要
自20世纪下半叶以来,在光学中使用金属已成为一个有前途的血浆场,用于以深度的亚波长度控制光。位于金属表面上的表面等离子体极化剂在等离子体上至关重要。然而,尽管有悠久的等化病史,但尚未完全了解产生表面波的基本机制。这项研究揭示了隐藏的对称保护,可确保存在退化的零模式。这些零模式被识别为表面等离子体极性子的物理起源,并且类似的零模式可以在时间边界处直接激发。在实际空间中,零模式具有与表面阻抗相关的矢量场旋转。我们的重点是表面阻抗,我们证明了散装的对应关系,即使具有不均匀性,它也可以保证表面等离子体偏振子的存在。最后,我们使用二元性最小电路模型在金属和介电材料之间的拓扑转换中提取潜在的物理。过渡被认为是电气和磁性零模式之间的交叉。
Since the latter half of the 20th century, the use of metal in optics has become a promising plasmonics field for controlling light at a deep subwavelength scale. Surface plasmon polaritons localized on metal surfaces are crucial in plasmonics. However, despite the long history of plasmonics, the underlying mechanism producing the surface waves is not fully understood. This study unveils the hidden symmetry protection that ensures the existence of degenerated electric zero modes. These zero modes are identified as physical origins of surface plasmon polaritons, and similar zero modes can be directly excited at a temporal boundary. In real space, the zero modes possess vector-field rotation related to surface impedance. Focusing on the surface impedance, we prove the bulk-edge correspondence, which guarantees the existence of surface plasmon polaritons even with nonuniformity. Lastly, we extract the underlying physics in the topological transition between metal and dielectric material using a minimal circuit model with duality. The transition is considered the crossover between electric and magnetic zero modes.