English

Super Bound States in the Continuum: Analytic Framework, Parametric Dependence, and Fast Direct Computation

Optics 2025-05-02 v1

Abstract

In periodic structures such as photonic crystal (PhC) slabs, a bound state in the continuum (BIC) is always surrounded by resonant states with their QQ-factor following Q1/ββ2pQ\sim 1/|{\bm \beta}-{\bm \beta}_*|^{2p}, where β{\bm \beta} and β{\bm \beta}_* are the Bloch wavevectors of the resonant state and the BIC, respectively. Typically p=1p=1, but special BICs, known as the super-BICs, have p2p\geq 2. Super-BICs can significantly enhance the QQ-factor of nearby resonant states and reduce scattering losses due to fabrication imperfections, making them highly advantageous in practical applications. However, super-BICs, requiring the tuning of structural parameters for their realization, are generally not robust. In this work, we develop a theory to classify super-BICs, determine the minimal number nn of tunable structural parameters needed, and show that super-BICs form a manifold of dimension (mn)(m-n) in an mm-dimensional parameter space. We also propose a direct method for computing super-BICs in structures with different symmetry. Numerical examples demonstrate that our method is far more efficient than existing methods when n>1n > 1. In addition, we study the effect of structural perturbations, focusing on the transition from super-BICs to generic BICs. Finally, we analyze a class of degenerate BICs that can be regarded as Dirac points, and show that they are the intersections of super-BICs in a relevant parameter space. Our work advances the theoretical understanding on super-BICs, and has both direct and potential applications in optical design and light-matter interactions.

Keywords

Cite

@article{arxiv.2505.00235,
  title  = {Super Bound States in the Continuum: Analytic Framework, Parametric Dependence, and Fast Direct Computation},
  author = {Nan Zhang and Ya Yan Lu},
  journal= {arXiv preprint arXiv:2505.00235},
  year   = {2025}
}
R2 v1 2026-06-28T23:17:32.630Z