Topological antilaser

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Shen, Rui-Chang, Peng, Chunquan, Wang, Bingbing, Xie, Wentao, Zhang, Siyuan, Zhou, Peiheng, Zhang, Baile, Chong, Y. D., Xue, Haoran
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914277870272512
author Shen, Rui-Chang
Peng, Chunquan
Wang, Bingbing
Xie, Wentao
Zhang, Siyuan
Zhou, Peiheng
Zhang, Baile
Chong, Y. D.
Xue, Haoran
author_facet Shen, Rui-Chang
Peng, Chunquan
Wang, Bingbing
Xie, Wentao
Zhang, Siyuan
Zhou, Peiheng
Zhang, Baile
Chong, Y. D.
Xue, Haoran
contents Coherent perfect absorption (CPA)-the time-reversed operation of lasing at threshold-relies on finely tuned interference and is intrinsically fragile to disorder and structural imperfections. Whether absorption can be endowed with topological protection, by analogy to topological lasing, has remained an open question. Here, we experimentally demonstrate a topological antilaser: the time-reversed counterpart of a topological laser, in which chiral edge modes of a photonic lattice enable perfect light absorption protected by topology. Using a nonreciprocal microwave network with low intrinsic loss, we show that the topological antilaser preserves near-unity absorption under strong disorder, and, unlike conventional antilasers, remains functional for arbitrary placements of dissipation and input ports, even when the lattice is strongly perturbed. This robustness arises from the disorder-immune propagation and stable spatial profile of the topological edge modes. Our results establish topologically protected absorption as the missing counterpart of topological lasing, opening new directions for studying robust energy dissipation, wave control, and coherent-absorption-based detection technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2601_17719
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Topological antilaser
Shen, Rui-Chang
Peng, Chunquan
Wang, Bingbing
Xie, Wentao
Zhang, Siyuan
Zhou, Peiheng
Zhang, Baile
Chong, Y. D.
Xue, Haoran
Optics
Mesoscale and Nanoscale Physics
Coherent perfect absorption (CPA)-the time-reversed operation of lasing at threshold-relies on finely tuned interference and is intrinsically fragile to disorder and structural imperfections. Whether absorption can be endowed with topological protection, by analogy to topological lasing, has remained an open question. Here, we experimentally demonstrate a topological antilaser: the time-reversed counterpart of a topological laser, in which chiral edge modes of a photonic lattice enable perfect light absorption protected by topology. Using a nonreciprocal microwave network with low intrinsic loss, we show that the topological antilaser preserves near-unity absorption under strong disorder, and, unlike conventional antilasers, remains functional for arbitrary placements of dissipation and input ports, even when the lattice is strongly perturbed. This robustness arises from the disorder-immune propagation and stable spatial profile of the topological edge modes. Our results establish topologically protected absorption as the missing counterpart of topological lasing, opening new directions for studying robust energy dissipation, wave control, and coherent-absorption-based detection technologies.
title Topological antilaser
topic Optics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2601.17719