English

Attosecond-timing millimeter waves via Kerr optical frequency division

Optics 2026-01-23 v1

Abstract

Millimeter-wave oscillators underpin key applications in communication, spectroscopy, radar, and astronomy, yet their achievable spectral purity remains limited. Approaches that directly generate millimeter-wave carriers are fundamentally limited by quantum and thermal phase-noise processes. Here we show that these limits can be overcome by combining Kerr-induced optical frequency division in a chip-scale microresonator with a large-spacing dual-wavelength Brillouin laser. This 3.3 THz optical reference injection-locks a Kerr soliton microcomb, with a repetition rate that becomes a coherently divided 300 GHz carrier with phase noise below the quantum limit of a corresponding 300 GHz dual-wavelength Brillouin laser and far below the thermo-refractive noise of a microring resonator. Cross-correlation phase-noise measurements were developed to show that the resulting oscillator reaches a phase-noise floor of -152 dBc/Hz at 1 MHz offset, consistent with photodetection shot noise. Integration of the measured spectrum yields an RMS timing jitter of 135 as from 1 kHz to 1 MHz. These results establish optical frequency division as a generic method for generation of sub-terahertz carriers with coherence no longer constrained by direct-generation limits.

Keywords

Cite

@article{arxiv.2601.15456,
  title  = {Attosecond-timing millimeter waves via Kerr optical frequency division},
  author = {Scott C. Egbert and Brendan M. Heffernan and James Greenberg and William F. McGrew and Antoine Rolland},
  journal= {arXiv preprint arXiv:2601.15456},
  year   = {2026}
}
R2 v1 2026-07-01T09:14:54.567Z