Topological photonic alloy
Abstract
We present the new concept of photonic alloy as a non-periodic topological material. By mixing non-magnetized and magnetized rods in a non-periodic 2D photonic crystal configuration, we realized photonic alloys in the microwave regime. Our experimental findings reveal that the photonic alloy sustains non-reciprocal chiral edge states (CESs) even at very low concentration of magnetized rods. The non-trivial topology and the associated edge states of these non-periodic systems can be characterized by the winding of the reflection phase. Our results indicate that the threshold concentrations for the investigated system within the first non-trivial band gap to exhibit topological behavior approach zero in the thermodynamic limit for substitutional alloys, while the threshold remains non-zero for interstitial alloys. At low concentration, the system exhibits an inhomogeneous structure characterized by isolated patches of non-percolating magnetic domains that are spaced far apart within a topologically trivial photonic crystal. Surprisingly, the system manifests CESs despite a local breakdown of time-reversal symmetry rather than a global one. Photonic alloys represent a new category of disordered topological materials, offering exciting opportunities for exploring topological materials with adjustable gaps.
Cite
@article{arxiv.2406.05168,
title = {Topological photonic alloy},
author = {Tiantao Qu and Mudi Wang and Xiaoyu Cheng and Xiaohan Cui and Ruo-Yang Zhang and Zhao-Qing Zhang and Lei Zhang and Jun Chen and C. T. Chan},
journal= {arXiv preprint arXiv:2406.05168},
year = {2024}
}
Comments
6 pages, 4 figures