English

Frozen Mode Regime in an Optical Waveguide With Distributed Bragg Reflector

Optics 2023-04-19 v2

Abstract

We introduce a glide symmetric optical waveguide exhibiting a stationary inflection point (SIP) in the Bloch wavenumber dispersion relation. An SIP is a third order exceptional point of degeneracy (EPD) where three Bloch eigenmodes coalesce to form a so-called frozen mode with vanishing group velocity and diverging amplitude. We show that the incorporation of chirped distributed Bragg reflectors and distributed coupling between waveguides in the periodic structure facilitates the SIP formation and greatly enhances the characteristics of the frozen mode regime. We confirm the existence of an SIP in two ways: by observing the flatness of the dispersion diagram and also by using a coalescence parameter describing the separation of the three eigenvectors collapsing on each other. We find that in the absence of losses, both the quality factor and the group delay at the SIP grow with the cubic power of the cavity length. The frozen mode regime can be very attractive for light amplification and lasing, in optical delay lines, sensors, and modulators.

Keywords

Cite

@article{arxiv.2212.06222,
  title  = {Frozen Mode Regime in an Optical Waveguide With Distributed Bragg Reflector},
  author = {Nathaniel Furman and Tarek Mealy and Md Shafiqul Islam and Ilya Vitebskiy and Ricky Gibson and Robert Bedford and Ozdal Boyraz and Filippo Capolino},
  journal= {arXiv preprint arXiv:2212.06222},
  year   = {2023}
}

Comments

11 pages, 14 figures

R2 v1 2026-06-28T07:31:44.282Z