English

Equireflectionality and customized unbalanced coherent perfect absorption in asymmetric waveguide networks

Classical Physics 2023-05-05 v1 Optics

Abstract

We explore the scattering of waves in designed asymmetric one-dimensional waveguide networks. We show that the reflection between two ports of an asymmetric network can be identical over a broad frequency range, as if the network was mirror-symmetric, under the condition of so-called latent symmetry between the ports. This broadband equireflectionality is validated numerically for acoustic waveguides and experimentally through measurements on microwave transmission-line networks. In addition, introducing a generalization of latent symmetry, we study the properties of an NN-port scattering matrix SS. When the powers of SS fulfill certain relations, which we coin scaled cospectrality, the setup is guaranteed to possess at least one zero eigenvalue of SS, so that the setup features coherent perfect absorption. More importantly, scaled cospectrality introduces a scaling factor which controls the asymmetry of the incoming wave to be absorbed. Our findings introduce a novel approach for designing tunable wave manipulation devices in asymmetric setups. As evidenced by our acoustic simulations and microwave experiments, the generality of our approach extends its potential applications to a wide range of physical systems.

Keywords

Cite

@article{arxiv.2305.02786,
  title  = {Equireflectionality and customized unbalanced coherent perfect absorption in asymmetric waveguide networks},
  author = {Malte Röntgen and Olivier Richoux and Georgios Theocharis and Christian V. Morfonios and Peter Schmelcher and Philipp del Hougne and Vassos Achilleos},
  journal= {arXiv preprint arXiv:2305.02786},
  year   = {2023}
}
R2 v1 2026-06-28T10:25:36.503Z