论文标题
光子P-轨道高阶拓扑绝缘子
Photonic p-orbital higher-order topological insulators
论文作者
论文摘要
轨道自由度在理解固态材料的基本现象以及物质的异国量子状态(包括轨道超流体和拓扑半法)方面起着关键作用。尽管在工程合成冷原子,电子和光子晶格方面为探索轨道物理学做出了巨大努力,但迄今为止,在重要类材料中的高轨道,即高阶拓扑绝缘子(HOTIS),尚未实现。在这里,我们在光子HOTI中展示了P轨道角状态,揭示了其潜在的拓扑不变,对称性保护和非线性诱导的动力旋转。在Kagome型HOTI中,我们发现对P轨道角的拓扑保护还需要轨道跳动的对称性,此外还需要一般的手性对称性。由于轨道杂交,如果将散装极化用作拓扑不变性,则隐藏了p轨道HOTI的非平凡拓扑。我们的工作开辟了一条途径,以探索由适用于各种系统的较高带拓扑介导的有趣的轨道现象。
The orbital degrees of freedom play a pivotal role in understanding fundamental phenomena in solid-state materials as well as exotic quantum states of matter including orbital superfluidity and topological semimetals. Despite tremendous efforts in engineering synthetic cold-atom, electronic and photonic lattices to explore orbital physics, thus far high orbitals in an important class of materials, namely, the higher-order topological insulators (HOTIs), have not been realized. Here, we demonstrate p-orbital corner states in a photonic HOTI, unveiling their underlying topological invariant, symmetry protection, and nonlinearity-induced dynamical rotation. In a Kagome-type HOTI, we find that topological protection of the p-orbital corner states demands an orbital-hopping symmetry, in addition to the generalized chiral symmetry. Due to orbital hybridization, the nontrivial topology of the p-orbital HOTI is hidden if bulk polarization is used as the topological invariant, but well manifested by the generalized winding number. Our work opens a pathway for the exploration of intriguing orbital phenomena mediated by higher band topology applicable to a broad spectrum of systems.