Li Zhitong, Luo Xi-Wang, Lin Dayang, Gharajeh Abouzar, Moon Jiyoung, Hou Junpeng, Zhang Chuanwei, Gu Qing
Department of Electrical and Computer Engineering, The University of Texas at Dallas, Richardson, Texas 75080, USA.
Department of Physics, The University of Texas at Dallas, Richardson, Texas 75080, USA.
Phys Rev Lett. 2023 Jul 14;131(2):023202. doi: 10.1103/PhysRevLett.131.023202.
Bulk-edge correspondence, with quantized bulk topology leading to protected edge states, is a hallmark of topological states of matter and has been experimentally observed in electronic, atomic, photonic, and many other systems. While bulk-edge correspondence has been extensively studied in Hermitian systems, a non-Hermitian bulk could drastically modify the Hermitian topological band theory due to the interplay between non-Hermiticity and topology, and its effect on bulk-edge correspondence is still an ongoing pursuit. Importantly, including non-Hermicity can significantly expand the horizon of topological states of matter and lead to a plethora of unique properties and device applications, an example of which is a topological laser. However, the bulk topology, and thereby the bulk-edge correspondence, in existing topological edge-mode lasers is not well defined. Here, we propose and experimentally probe topological edge-mode lasing with a well-defined non-Hermitian bulk topology in a one-dimensional (1D) array of coupled ring resonators. By modeling the Hamiltonian with an additional degree of freedom (referred to as synthetic dimension), our 1D structure is equivalent to a 2D non-Hermitian Chern insulator with precise mapping. Our Letter may open a new pathway for probing non-Hermitian topological effects and exploring non-Hermitian topological device applications.
体边对应关系,即量子化的体拓扑结构导致受保护的边缘态,是物质拓扑态的一个标志,并且已在电子、原子、光子及许多其他系统中得到实验观测。虽然体边对应关系已在厄米系统中得到广泛研究,但非厄米体由于非厄米性与拓扑之间的相互作用,可能会极大地改变厄米拓扑能带理论,而其对体边对应关系的影响仍在不断探索中。重要的是,纳入非厄米性能够显著拓展物质拓扑态的范畴,并导致大量独特性质及器件应用,拓扑激光器就是其中一个例子。然而,现有拓扑边缘模激光器中的体拓扑结构,进而体边对应关系,并不明确。在此,我们提出并通过实验探测了在一维耦合环形谐振器阵列中具有明确非厄米体拓扑结构的拓扑边缘模激光。通过用一个额外的自由度(称为合成维度)对哈密顿量进行建模,我们的一维结构等效于一个具有精确映射的二维非厄米陈绝缘体。我们的这篇文章可能会为探测非厄米拓扑效应及探索非厄米拓扑器件应用开辟一条新途径。