Tackling the Limits of Optical Fiber Links
arXiv:1412.2496 · doi:10.1364/JOSAB.32.000787
Abstract
We theoretically and experimentally investigate relevant noise processes arising in optical fiber links, which fundamentally limit their relative stability. We derive the unsuppressed delay noise for three configurations of optical links: two-way method, Sagnac interferometry, and actively compensated link, respectively designed for frequency comparison, rotation sensing, and frequency transfer. We also consider an alternative two-way setup allowing real-time frequency comparison and demonstrate its effectiveness on a proof-of-principle experiment with a 25-km fiber spool. For these three configurations, we analyze the noise arising from uncommon fiber paths in the interferometric ensemble and design optimized interferometers. We demonstrate interferometers with very low temperature sensitivity of respectively -2.2, -0.03 and 1 fs/K. We use one of these optimized interferometers on a long haul compensated fiber link of 540km. We obtain a relative frequency stability of 3E-20 after 10,000 s of integration time.
References in corpus (5)
- Coherent optical frequency transfer at 5e-19 over a doubled 642 km fiber link
- Long-distance frequency transfer over an urban fiber link using optical phase stabilization
- Cascaded multiplexed optical link on a telecommunication network for frequency dissemination
- Carrier-phase Two-Way Satellite Frequency Transfer over a Very Long Baseline
- Two-Way Optical Frequency Comparisons Over 100km Telecommunication Network Fibers