Observation of non-Hermitian point gap in photonic crystals
arXiv:2512.14974 · doi:10.1103/vsx1-17cl
Abstract
Non-Hermitian point gap (NHPG) is a unique phenomenon in non-Hermitian systems and induces non-Hermitian skin effect (NHSE). In photonic crystals, NHPG and the NHSE have previously been explored mainly through material loss, where the typically low factors make direct observation of complex frequencies challenging. Here, we demonstrate the direct experimental observation of an NHPG by using a radiation-loss-based non-Hermitian photonic crystal. Radiation loss can be engineered through structural design, enabling control of the imaginary part of the complex frequency and allowing relatively high factors. This approach is compatible with widely used absorption-free silicon-slab photonic crystals. We developed a measurement system that can measure photonic bands along arbitrary lines in -space. Our measurements demonstrated direct observation of the NHPG in photonic crystals, and the reversal of non-Hermitian topology through the flip of loop rotation in a complex plane. Our platform, which requires neither gain media nor synthetic dimensions, establishes radiation-loss engineering as a simple and versatile route for photonic functionality using an NHSE in nanophotonic systems.
References in corpus (16)
- The physics of exceptional points
- Topological Origin of Non-Hermitian Skin Effects
- Efficient Light Funneling based on the non-Hermitian Skin Effect
- Observation of higher-order non-Hermitian skin effect
- Dynamically encircling exceptional points: Exact evolution and polarization state conversion
- Observation of arbitrary topological windings of a non-Hermitian band
- Active topological photonics
- Generation and Annihilation of Topologically-Protected Bound States in the Continuum and Circularly-Polarized States by Symmetry Breaking
- Non-trivial point-gap topology and non-Hermitian skin effect in photonic crystals
- Non-Hermitian skin effect beyond the tight-binding models
- Non-Hermitian waves in a continuous periodic model and application to photonic crystals
- Multi-dimensional band structure spectroscopy in the synthetic frequency dimension
- Photonic topological phase transition induced by material phase transition
- Fundamental constraints on the observability of non-Hermitian effects in passive systems
- Optical non-Hermitian skin effect in two-dimensional uniform media
- EP restoration and fast-light edge states in photonic crystal waveguide with glide and time reversal symmetry