Symmetry-protected non-Abelian geometric phases in optical waveguides with nonorthogonal modes
arXiv:2105.04859 · doi:10.1103/PhysRevA.105.013507
Abstract
The generation of non-Abelian geometric phases from a system of evanescently coupled waveguides is extended towards the framework of nonorthogonal coupled-mode theory. Here, we study an experimentally feasible tripod arrangement of waveguides that contain dark states from which a nontrivial U(2)-mixing can be obtained by means of an adiabatic parameter variation. We investigate the influence of higher-order contributions beyond nearest-neighbour coupling as well as self-coupling on the stability of a U(3)-phase generated from an optical tetrapod setup. Our results indicate that, despite the mode nonorthogonality, the symmetry of dark states protects the geometric evolution of light from distortion.
8 pages, 11 figures
References in corpus (6)
- Simulating Lattice Gauge Theories within Quantum Technologies
- Observation of Light Guiding by Artificial Gauge Fields
- Braiding photonic topological zero modes
- Artificial gauge fields with ultracold atoms
- Optimal design strategy for non-Abelian geometric phases using Abelian gauge fields based on quantum metric
- Highly-Degenerate Photonic Waveguide Structures for Holonomic Computation