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February 8, 2026Journal of Applied Physics2 citationsOpen Access

Ultra-high quality-factor enhancement via merged bound states in the continuum for high-performance optical sensing

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FLFugui LeiGuangdong University of TechnologySWShun WangGuangdong University of TechnologyRYRui YaoNingbo University

Key Points

  • To explore ways to achieve ultra-high Q-factor resonances by merging bound states in the continuum for improved optical sensing.
  • Designed a double-layer metasurface with silicon nanopore arrays.
  • Merged symmetry-protected bound states with Fabry-Pérot-type bound states.
  • Tuned interlayer distance to modify radiation behavior.
  • Enhanced Q-factor by three orders of magnitude compared to isolated BICs.
  • Achieved refractive index sensitivity of 126 nm/RIU.
  • Figure of merit exceeded 1.4 × 105 RIU−1.

Abstract

Symmetry-protected bound states in the continuum (SP-BICs) offer a promising approach for high-quality (Q) metasurface design due to their non-radiative properties. However, conventional isolated SP-BICs typically offer limited enhancement to Q and require extremely small symmetry-breaking perturbations to become excitable, presenting challenges in fabrication and practical deployment. This work proposes a novel approach to enhance the Q-factor of resonances by merging BICs, enabling the structure to sustain ultra-high Q-factor even under relatively large symmetry-breaking conditions. Specifically, a double-layer metasurface composed of two silicon nanopore arrays is designed. By tuning the interlayer distance, SP-BICs are effectively merged with Fabry––Pérot-type BICs in parameter space, modifying the radiation behavior of the original SP-BICs. Results show that the merged BIC structure enhances the Q-factor by three orders of magnitude compared to isolated BICs. In sensing performance, the proposed structure achieves a refractive index sensitivity of 126 nm/RIU and an outstanding figure of merit surpassing 1.4 × 105 RIU−1, which substantially outperforms isolated BICs. Moreover, diverse high-Q modal features are observed in the wavelength-offset parameter space, offering new opportunities for multi-channel sensing and narrowband filtering applications.

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Cite This Study

Lei et al. (2026) studied this question.

synapsesocial.com/papers/698827c90fc35cd7a8846b3bhttps://doi.org/10.1063/5.0312833
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