Light transfer transitions beyond higher-order exceptional points in parity-time and anti-parity-time symmetric waveguide arrays
Abstract
We propose two non-Hermitian arrays consisting of waveguides and exhibiting parity-time () or anti- symmetry for investigating light transfer dynamics based on th-order exceptional points (EPs). The -symmetric array supports two th-order EPs separating an unbroken and a broken phase with real and imaginary eignvalues, respectively. Light transfer dynamics in this array exhibits radically different behaviors, i.e. a unidirectional oscillation behavior in the unbroken phase, an edge-towards localization behavior in the broken phase, and a center-towards localization behavior just at th-order EPs. The anti--symmetric array supports also two th-order EPs separating an unbroken and a broken phase, which refer however to imaginary and real eigenvalues, respectively. Accordingly, light transfer dynamics in this array exhibits a center-towards localization behavior in the unbroken phase and an origin-centered oscillation behavior in the broken phase. These nontrivial light transfer behaviors and their controlled transitions are not viable for otherwise split lower-order EPs and depend on the underlying symmetry of spin- matrices.
Keywords
Cite
@article{arxiv.2205.07566,
title = {Light transfer transitions beyond higher-order exceptional points in parity-time and anti-parity-time symmetric waveguide arrays},
author = {Chuanxun Du and Gang Wang and Yan Zhang and Jin-Hui Wu},
journal= {arXiv preprint arXiv:2205.07566},
year = {2022}
}