English

Degenerate optical parametric amplification in CMOS silicon

Optics 2022-07-18 v1 Applied Physics

Abstract

Silicon is a common material for photonics due to its favorable optical properties in the telecom and mid-wave IR bands, as well as compatibility with a wide range of complementary metal-oxide semiconductor (CMOS) foundry processes. Crystalline inversion symmetry precludes silicon from natively exhibiting second-order nonlinear optical processes. In this work, we build on recent work in silicon photonics that break this material symmetry using large bias fields, thereby enabling χ(2)\chi^{(2)} interactions. Using this approach, we demonstrate both second-harmonic generation (with a normalized efficiency of 0.2%W1cm20.2\,\%\,\mathrm{W^{-1} cm^{-2}}) and, to our knowledge, the first degenerate χ(2)\chi^{(2)} optical parametric amplifier (with relative gain of 0.02dB0.02\,\mathrm{dB} using 3mW3\,\mathrm{mW} of pump power on-chip at a pump wavelength of 1196nm1196\,\mathrm{nm}) using silicon-on-insulator waveguides fabricated in a CMOS-compatible commercial foundry. We expect this technology to enable the integration of novel nonlinear optical devices such as optical parametric amplifiers, oscillators, and frequency converters into large-scale, hybrid photonic-electronic systems by leveraging the extensive ecosystem of CMOS fabrication.

Keywords

Cite

@article{arxiv.2207.07365,
  title  = {Degenerate optical parametric amplification in CMOS silicon},
  author = {David Heydari and Mircea Catuneanu and Edwin Ng and Dodd J. Gray and Ryan Hamerly and Jatadhari Mishra and Marc Jankowski and M. M. Fejer and Kambiz Jamshidi and Hideo Mabuchi},
  journal= {arXiv preprint arXiv:2207.07365},
  year   = {2022}
}

Comments

The first three authors contributed equally to this work; 9 pages, 5 figures

R2 v1 2026-06-25T00:56:26.451Z