English

Topological Microlaser with A non-Hermitian Topological Bulk

Optics 2023-07-26 v1

Abstract

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 work may open a new pathway for probing non-Hermitian topological effects and exploring non-Hermitian topological device applications.

Keywords

Cite

@article{arxiv.2303.00114,
  title  = {Topological Microlaser with A non-Hermitian Topological Bulk},
  author = {Zhitong Li and Xi-Wang Luo and Dayang Lin and Abouzar Gharajeh and Jiyoung Moon and Junpeng Hou and Chuanwei Zhang and Qing Gu},
  journal= {arXiv preprint arXiv:2303.00114},
  year   = {2023}
}

Comments

8 pages, 4 figures

R2 v1 2026-06-28T08:52:39.142Z