English

Reconfigurable Resonant Multimode Nonlinear Coupling for UV-to-infrared Frequency Generation

Optics 2026-03-20 v2

Abstract

On-chip coherent visible and near-infrared (NIR) light generation has broad applications in metrology, bio-sensing, and quantum information. High-Q microresonators are ideal candidates for generating light across such broad wavelength ranges via efficient second- (χ(2)\chi^{(2)}) and third-order (χ(3)\chi^{(3)}) nonlinear optical processes. However, harnessing these diverse nonlinearities simultaneously in a single microresonator remains elusive yet highly attractive both fundamentally and technologically. Here, we demonstrate coherent light generation from the ultraviolet to NIR in a silicon nitride microresonator pumped by a single continuous-wave telecom laser. This broad frequency generation arises from the interplay of χ(2)\chi^{(2)} and χ(3)\chi^{(3)} nonlinear processes. A cascade of nonlinear processes, including harmonic generation and optical parametric oscillation (OPO), is initiated by the photoinduced second harmonic generation enabled by all-optical poling. The dynamic reconfigurability of this χ(2)\chi^{(2)} nonlinearity enables access to different transverse spatial modes at the second harmonic, enabling highly tunable OPO processes triggered by hybrid modal phase matching conditions and yielding milliwatt-level NIR light. This work sheds new insights into the fundamental physics of cooperative nonlinear multimode interactions in resonant systems and provides a versatile approach for reconfigurable OPOs, highlighting their potential to generate light at wavelengths beyond the reach of photonic integrated lasers.

Keywords

Cite

@article{arxiv.2603.17878,
  title  = {Reconfigurable Resonant Multimode Nonlinear Coupling for UV-to-infrared Frequency Generation},
  author = {Samantha Sbarra and Ji Zhou and Boris Zabelich and Marco Clementi and Christian Lafforgue and Ozan Yakar and Junqiu Liu and Tobias J. Kippenberg and Camille-Sophie Brès},
  journal= {arXiv preprint arXiv:2603.17878},
  year   = {2026}
}

Comments

17 pages, 10 figures

R2 v1 2026-07-01T11:26:28.755Z