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Point-to-Point Stabilised Optical Frequency Transfer with Active Optics

Authors :
Dix-Matthews, Benjamin P.
Schediwy, Sascha W.
Gozzard, David R.
Savalle, Etienne
Esnault, François-Xavier
Lévèque, Thomas
Gravestock, Charles
D'Mello, Darlene
Karpathakis, Skevos
Tobar, Michael
Wolf, Peter
Source :
Nat Commun 12, 515 (2021)
Publication Year :
2020

Abstract

Timescale comparison between optical atomic clocks over ground-to-space and terrestrial free-space laser links will have enormous benefits for fundamental and applied science, from measurements of fundamental constants and searches for dark matter, to geophysics and environmental monitoring. However, turbulence in the atmosphere creates phase noise on the laser signal, greatly degrading the precision of the measurements, and also induces scintillation and beam wander which cause periodic deep fades and loss of signal. We demonstrate phase stabilized optical frequency transfer over a 265 m horizontal point-to-point free-space link between optical terminals with active tip-tilt mirrors to suppress beam wander, in a compact, human-portable set-up. A phase stabilized 715 m underground optical fiber link between the two terminals is used to measure the performance of the free-space link. The active optics terminals enabled continuous, coherent transmission over periods of up to an hour. We achieve an 80 dB suppression of atmospheric phase noise to $3\times10^{-6}$ rad$^{2}$Hz$^{-1}$ at 1 Hz, and an ultimate fractional frequency stability of $1.6\times10^{-19}$ after 40 s of integration. At high frequency this performance is limited by the residual atmospheric noise after compensation and the frequency noise of the laser seen through the unequal delays of the free space and fiber links. Our long term stability is limited by the thermal shielding of the phase stabilization system. We achieve residual instabilities below those of the best optical atomic clocks, ensuring clock-limited frequency comparison over turbulent free-space links.<br />Comment: 9 pages, 3 figures. In appendix: 4 pages, 2 figures

Details

Database :
arXiv
Journal :
Nat Commun 12, 515 (2021)
Publication Type :
Report
Accession number :
edsarx.2007.04985
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-020-20591-5