Archive/Robust Terahertz Refractive-Index Sensor Based on Cavity-Edge-State Coupling in a Topological Photonic Crystal
Robust Terahertz Refractive-Index Sensor Based on Cavity-Edge-State Coupling in a Topological Photonic Crystal
Rongbing Yang, Shirui Liu, Zhang Zhang et al.
23 de julio de 2026
en

Abstract

Topological photonics provides a robust framework for controlling light, with edge states offering immunity to disorder. However, utilizing this stability for practical sensing remains a challenge, as conventional high-sensitivity photonic crystal sensors suffer common imperfections. Here, we numerically design a topological photonic crystal sensor for THz refractive-index detection. The silicon-based structural slab is engineered, showing a wide photonic bandgap (PBG). By breaking the inversion symmetry, two structures with trivial and nontrivial topological phases are constructed. Due to their opposite valley Chern numbers, the topologically protected edge states can be formed at the interface. Such edge states were further integrated with the resonant cavities, so that the resonant frequencies were observed in transmittance property, forming a stable cavity–edge states coupling channel for refractive-index sensing. Numerical results demonstrate strong suppression of transmission distortion induced by boundary defects, verifying favorable topological robustness of the proposed architecture. The structure exhibits linear refractive-index response with a simulated sensitivity of 1.9 THz/RIU, outperforming conventional photonic crystal sensors in numerical comparison. This work merges topological stability of edge states with high sensitivity response of resonant frequency, offering a theoretical candidate for robust biosensing and chemical detection.

IPC Classification

G06C07B60

Keywords

robustterahertzrefractive-indexsensorbasedcavity-edge-statecouplingtopologicalphotoniccrystalphotonicsprovidesframeworkcontrollinglightedgestatesofferingimmunitydisorderhoweverutilizingstabilitypractical
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