English

Theory of Supercritical Coupling And Generalized Bound States in the Continuum

Optics 2026-05-13 v1 Materials Science

Abstract

Bound states in the continuum (BICs) arise from destructive interference suppressing radiation despite spectral overlap with the continuum. Here we show that Friedrich--Wintgen interference naturally emerges from a bright--dark supermode decomposition of resonances coupled through a shared radiation channel. In this basis, any finite leakage of a quasi-BIC induces a causality-driven reactive coupling enabling non-Hermitian pumping of the dark sector. We derive the optimal condition for this process and show that it corresponds to the supercritical coupling regime previously identified in [Nature 626, 765 (2024)], while naturally recovering universal quasi-BIC asymmetry scaling. Extending the theory to Dirac-like dispersions in photonic crystal slabs, we identify an open-Dirac singularity where the Dirac gap matches the supercritical regime. A four-wave Hamiltonian quantitatively reproduces rigorous coupled-wave analysis, revealing the breakdown of conventional critical coupling. Near this regime, absorptive cross-coupling induces coherent absorption interference and enables suppression of effective dissipative losses beyond conventional material limits. These results motivate the concept of a generalized bound state in the continuum (gBIC) as a limiting non-Hermitian state where radiative and effective gain compensate, producing a true divergence of the total quality factor. Overall, this work establishes a unified framework connecting BIC interference, Dirac topology, and non-Hermitian physics for ultra-high-Q enhancement and loss engineering in open photonic systems.

Keywords

Cite

@article{arxiv.2605.11741,
  title  = {Theory of Supercritical Coupling And Generalized Bound States in the Continuum},
  author = {Sergio Balestrieri and Bruno Miranda and Silvia Romano and Gianluigi Zito},
  journal= {arXiv preprint arXiv:2605.11741},
  year   = {2026}
}

Comments

23 pages, 11 figures, under review, Supporting Information not included here (available from the publisher)