English

Ultrahigh-$Q$ on-chip silicon-germanium microresonators

Optics 2021-11-22 v1 Applied Physics

Abstract

We demonstrate fully crystalline, single-mode ultrahigh quality factor integrated microresonators comprising epitaxially grown Si0.86_{0.86}Ge0.14_{0.14} waveguide cores with silicon claddings. These waveguides support resonances with internal Q>108Q >10^8 for both polarization modes, a nearly order-of-magnitude improvement over that seen in prior integrated Si photonics platforms. The maximum QQ is 1.71±0.06×1081.71\pm0.06 \times 10^8 for the transverse magnetic (TM) polarization mode, corresponding to a loss of 0.39±0.020.39\pm0.02 dB/m. Together with silicon's strong Kerr nonlinearity and low losses in the optical, microwave and acoustic regimes, our results could lead to the Si1x_{1-x}Gex_x/Si architecture unlocking important new avenues for Kerr frequency combs, optomechanics, and quantum transduction.

Keywords

Cite

@article{arxiv.2111.10292,
  title  = {Ultrahigh-$Q$ on-chip silicon-germanium microresonators},
  author = {Ryan Schilling and Chi Xiong and Swetha Kamlapurkar and Abram Falk and Nathan Marchack and Stephen Bedell and Richard Haight and Christopher Scerbo and Hanhee Paik and Jason S. Orcutt},
  journal= {arXiv preprint arXiv:2111.10292},
  year   = {2021}
}
R2 v1 2026-06-24T07:45:03.094Z