English

Radio Frequency from Optical with Instabilities below $10^{-15}$- Generation and Measurement

Optics 2025-03-10 v1

Abstract

This paper presents a frequency synthesis that achieves exceptional stability by transferring optical signals to the radio frequency (RF) domain at 100 MHz. We describe and characterize two synthesis chains composed of a cryogenic silicon cavity-stabilized laser at 1542 nm and an ultra-low expansion (ULE) glass cavity at 1157 nm, both converted to 10 GHz signals via Ti:Sapphire and Er/Yb:glass optical frequency combs (OFCs). The 10 GHz microwave outputs are further divided down to 100 MHz using a commercial microwave prescaler, which exhibits a residual frequency instability of σy(1 s)<1015\sigma_y(1~\text{s})<10^{-15} and low 101810^{-18} level at a few thousand seconds. Measurements are performed using a newly developed custom ultra-low-noise digital measurement system and are compared to the carrier-suppression technique. The new system enables high-sensitivity evaluation across the entire synthesis chain, from the optical and microwave heterodynes as well as the direct RF signals. Results show an absolute instability of σy(1 s)  4.7×1016\sigma_y(1~\text{s})~\approx~4.7\times10^{-16} at 100 MHz. This represents the first demonstration of such low instability at 100 MHz, corresponding to a phase noise of -140 dBc/Hz at a 1 Hz offset and significantly surpassing earlier systems. These advancements open new opportunities for precision metrology and timing systems.

Keywords

Cite

@article{arxiv.2503.05547,
  title  = {Radio Frequency from Optical with Instabilities below $10^{-15}$- Generation and Measurement},
  author = {A. Hati and M. Pomponio and N. V. Nardelli and T. Grogan and K. Kim and D. Lee and J. Ye and T. M. Fortier and A. Ludlow and C. W. Nelson},
  journal= {arXiv preprint arXiv:2503.05547},
  year   = {2025}
}

Comments

7 pages, 12 figures