APL Photonics (Jan 2024)

Application of quantum-limited optical time transfer to space-based optical clock comparisons and coherent networks

  • Emily D. Caldwell,
  • Laura C. Sinclair,
  • Jean-Daniel Deschenes,
  • Fabrizio Giorgetta,
  • Nathan R. Newbury

DOI
https://doi.org/10.1063/5.0170107
Journal volume & issue
Vol. 9, no. 1
pp. 016112 – 016112-19

Abstract

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With the demonstration of quantum-limited optical time transfer capable of tolerating the losses associated with long ground-to-space links, two future applications of free-space time transfer have emerged: intercontinental clock comparisons for time dissemination and coherence transfer for future distributed sensing in the mm-wave region. In this paper, we estimated the projected performance of these two applications using quantum-limited optical time transfer and assuming existing low-size, low-weight, and low-power hardware. In both cases, we limit the discussion to the simplest case of a single geosynchronous satellite linked to either one or two ground stations. One important consideration for such future space-based operations is the choice of reference oscillator onboard the satellite. We find that with a modestly performing optical reference oscillator and low-power fiber-based frequency combs, quantum-limited time transfer could support intercontinental clock comparisons through a common-view node in geostationary orbit with a modified Allan deviation at the 10−16 level at 10-s averaging time, limited primarily by residual turbulence piston noise. In the second application of coherence transfer from ground-to-geosynchronous orbit, we find the system should support high short-term coherence with ∼10 millirad phase noise on a 300 GHz carrier at essentially unlimited integration times.