Non-orthogonal cavity modes near exceptional points in the far field
arXiv:2401.03165 · doi:10.1038/s42005-023-01508-2
Abstract
Non-orthogonal eigenstates are a fundamental feature of non-Hermitian systems and are accompanied by the emergence of nontrivial features. However, the platforms to explore non-Hermitian mode couplings mainly measure near-field effects, and the far-field behaviour remain mostly unexplored. Here, we study how a microcavity with non-Hermitian mode coupling exhibits eigenstate non-orthogonality by investigating the spatial field and the far-field polarization of cavity modes. The non-Hermiticity arises from asymmetric backscattering, which is controlled by integrating two scatterers of different size and location into a microdisk. We observe that the spatial field overlaps of two modes increases abruptly to its maximum value, whilst different far-field elliptical polarizations of two modes coalesce when approaching an exceptional point. We demonstrate such features experimentally by measuring the far-field polarization from the fabricated microdisks. Our work reveals the non-orthogonality in the far-field degree of freedom, and the integrability of the microdisks paves a way to integrate more non-Hermitian optical properties into nanophotonic systems.
11pages, 4 figures
References in corpus (7)
- Efficient Light Funneling based on the non-Hermitian Skin Effect
- Dynamically encircling exceptional points: Exact evolution and polarization state conversion
- Exceptional Points in Atomic Spectra
- Dynamically manipulating topological physics and edge modes in a single degenerate optical cavity
- Enhanced Strong Interaction between Nanocavities and p-shell Excitons Beyond the Dipole Approximation
- Diabolical Points in Coupled Active Cavities with Quantum Emitters
- Quantum state discrimination in a PT-symmetric system