Engineering strong chiral light-matter interactions in a waveguide-coupled nanocavity
Abstract
Spin-dependent, directional light-matter interactions form the basis of chiral quantum networks. In the solid state, quantum emitters commonly possess circularly polarised optical transitions with spin-dependent handedness. We demonstrate numerically that spin-dependent chiral coupling can be realised by embedding such an emitter in a waveguide-coupled nanocavity, which supports two near-degenerate, orthogonally-polarised cavity modes. The chiral behaviour arises due to direction-dependent interference between the cavity modes upon coupling to two single-mode output waveguides. Notably, an experimentally realistic cavity design simultaneously supports near-unity chiral contrast, efficient () waveguide coupling and enhanced light-matter interaction strength (Purcell factor ). In combination, these parameters could enable the development of highly coherent spin-photon interfaces, ready for integration into nanophotonic circuits.
Cite
@article{arxiv.2108.01462,
title = {Engineering strong chiral light-matter interactions in a waveguide-coupled nanocavity},
author = {D. Hallett and A. P. Foster and D. M. Whittaker and M. S. Skolnick and L. R. Wilson},
journal= {arXiv preprint arXiv:2108.01462},
year = {2022}
}
Comments
19 pages, 5 figures