Optical clock intercomparison with $6\times 10^{-19}$ precision in one hour
Abstract
Improvements in atom-light coherence are foundational to progress in quantum information science, quantum optics, and precision metrology. Optical atomic clocks require local oscillators with exceptional optical coherence due to the challenge of performing spectroscopy on their ultra-narrow linewidth clock transitions. Advances in laser stabilization have thus enabled rapid progress in clock precision. A new class of ultrastable lasers based on cryogenic silicon reference cavities has recently demonstrated the longest optical coherence times to date. In this work we utilize such a local oscillator, along with a state-of-the-art frequency comb for coherence transfer, with two Sr optical lattice clocks to achieve an unprecedented level of clock stability. Through an anti-synchronous comparison, the fractional instability of both clocks is assessed to be for an averaging time in seconds. Synchronous interrogation reveals a quantum projection noise dominated instability of , resulting in a precision of after a single hour of averaging. The ability to measure sub- level frequency shifts in such short timescales will impact a wide range of applications for clocks in quantum sensing and fundamental physics. For example, this precision allows one to resolve the gravitational red shift from a 1 cm elevation change in only 20 minutes.
Cite
@article{arxiv.1902.02741,
title = {Optical clock intercomparison with $6\times 10^{-19}$ precision in one hour},
author = {E. Oelker and R. B. Hutson and C. J. Kennedy and L. Sonderhouse and T. Bothwell and A. Goban and D. Kedar and C. Sanner and J. M. Robinson and G. E. Marti and D. G. Matei and T. Legero and M. Giunta and R. Holzwarth and F. Riehle and U. Sterr and J. Ye},
journal= {arXiv preprint arXiv:1902.02741},
year = {2019}
}