English

Non-Hermitian Photonic Spin Hall Insulators

Optics 2024-01-05 v2 Mesoscale and Nanoscale Physics

Abstract

Photonic platforms invariant under parity (P\mathcal{P}), time-reversal (T\mathcal{T}), and duality (D\mathcal{D}) can support topological phases analogous to those found in time-reversal invariant Z2{\mathbb{Z}_2} electronic systems with conserved spin. Here, we demonstrate the resilience of the underlying spin Chern phases against non-Hermitian effects, notably material dissipation. We identify that non-Hermitian, PD\mathcal{P}\mathcal{D}-symmetric, and reciprocal photonic insulators fall into two topologically distinct classes. Our analysis focuses on the topology of a PD\mathcal{P}\mathcal{D}-symmetric and reciprocal parallel-plate waveguide (PPW). We discover a critical loss level in the plates that marks a topological phase transition. The Hamiltonian of the PTD\mathcal{P}\mathcal{T}\mathcal{D}-symmetric system is found to consist of an infinite direct sum of Kane-Mele type Hamiltonians with a common band gap. This structure leads to the topological charge of the waveguide being an ill-defined sum of integers due to the particle-hole symmetry. Each component of this series corresponds to a spin-polarized edge state. Our findings present a unique instance of a topological photonic system that can host an infinite number of edge states in its band gap.

Keywords

Cite

@article{arxiv.2301.13660,
  title  = {Non-Hermitian Photonic Spin Hall Insulators},
  author = {Rodrigo P. Câmara and Tatiana G. Rappoport and Mário G. Silveirinha},
  journal= {arXiv preprint arXiv:2301.13660},
  year   = {2024}
}
R2 v1 2026-06-28T08:28:03.713Z