English

Dual-Bus Resonator for Multi-Port Spectral Engineering

Optics 2025-10-31 v2

Abstract

Microresonators are essential in integrated photonics, enabling optical filters, modulators, sensors, and frequency converters. Their spectral response is governed by bus-to-resonator coupling, typically classified as under-, critical-, or over-coupling. Conventional single-bus designs inevitably link the conditions for critical coupling, a transmission zero, and maximum intra-cavity power, preventing independent control of these phenomena and restricting the ability to engineer coupling regimes and resonance lineshapes. Here we propose and experimentally demonstrate a dual-bus racetrack resonator that breaks this constraint. Our design demonstrates complementary channel-specific coupling regimes and enables wavelength-dependent Lorentzian-to-Fano lineshaping. We model the device using three-waveguide coupled-mode theory and pole-zero analysis, which reveals that transmission zeros are decoupled from cavity-defined critical coupling and maximum intra-cavity power. Furthermore, the dual-bus scheme operates broadband, spanning visible to mid-infrared across all four transmission channels, highlighting its spectral richness and platform independence. These results establish a general framework for multi-port spectral engineering in integrated photonics, with broad implications for tunable filters, modulators, sensors, and nonlinear optical systems.

Keywords

Cite

@article{arxiv.2510.24267,
  title  = {Dual-Bus Resonator for Multi-Port Spectral Engineering},
  author = {Taewon Kim and Mehedi Hasan and Yu Sung Choi and Jae Woong Yoon and Sangsik Kim},
  journal= {arXiv preprint arXiv:2510.24267},
  year   = {2025}
}

Comments

10 pages, 5 figures, plus 11 pages of supplementary material with 7 figures

R2 v1 2026-07-01T07:09:20.748Z