English

Visible nonlinear photonics via high-order-mode dispersion engineering

Optics 2020-02-27 v3 Applied Physics

Abstract

Over the past decade, remarkable advances have been realized in chip-based nonlinear photonic devices for classical and quantum applications in the near- and mid-infrared regimes. However, few demonstrations have been realized in the visible and near-visible regimes, primarily due to the large normal material group-velocity dispersion (GVD) that makes it challenging to phase match third-order parametric processes. In this paper, we show that exploiting dispersion engineering of higher-order waveguide modes provides waveguide dispersion that allows for small or anomalous GVD in the visible and near-visible regimes and phase matching of four-wave mixing processes. We illustrate the power of this concept by demonstrating in silicon nitride microresonators a near-visible modelocked Kerr frequency comb and a narrow-band photon-pair source compatible with Rb transitions. These realizations extend applications of nonlinear photonics towards the visible and near-visible regimes for applications in time and frequency metrology, spectral calibration, quantum information, and biomedical applications.

Keywords

Cite

@article{arxiv.1907.04843,
  title  = {Visible nonlinear photonics via high-order-mode dispersion engineering},
  author = {Yun Zhao and Xingchen Ji and Bok Young Kim and Prathamesh S. Donvalkar and Jae K. Jang and Chaitanya Joshi and Mengjie Yu and Chaitali Joshi and Renato R. Domeneguetti and Felippe A. S. Barbosa and Paulo Nussenzveig and Yoshitomo Okawachi and Michal Lipson and Alexander L. Gaeta},
  journal= {arXiv preprint arXiv:1907.04843},
  year   = {2020}
}

Comments

15 pages, 9 figures

R2 v1 2026-06-23T10:17:45.126Z