Twisted fibre: a photonic topological insulator
Abstract
The breaking and enforcing of symmetries is a crucial ingredient in designing topologically robust materials. While magnetic fields can break time-reversal symmetry to create Chern insulators in electronic and microwave systems, at optical frequencies natural materials cannot respond to magnetic fields, which presents a challenge for the scalable exploitation of topologically enhanced devices. Here, we leverage the natural geometry of fibre to build a scalable photonic Chern insulator by twisting the fibre during fabrication. The twist inside optical fibre breaks an effective time-reversal symmetry and induces a pseudo-magnetic field, which we observe via photonic Landau levels. Unavoidably, this twist introduces a competing topology-destroying effect through a parabolic profile in the effective refractive index. Using simulations to guide experimental materials design, we discover the Goldilocks regime where the real-space Chern invariant survives, guaranteeing topological protection against fabrication-induced disorder of any symmetry class.
Keywords
Cite
@article{arxiv.2411.13064,
title = {Twisted fibre: a photonic topological insulator},
author = {Nathan Roberts and Brook Salter and Jack Binysh and Peter J. Mosley and Anton Souslov},
journal= {arXiv preprint arXiv:2411.13064},
year = {2024}
}
Comments
23 pages, 16 figures