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International comparison of optical frequencies with transportable optical lattice clocks

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arxiv 2410.22973 v1 pith:7MJKSDEX submitted 2024-10-30 physics.atom-ph

classification physics.atom-ph
keywords clocksopticalfrequencygeopotentialsecondcampaigncomparisonshigh-performance
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Optical clocks have improved their frequency stability and estimated accuracy by more than two orders of magnitude over the best caesium microwave clocks that realise the SI second. Accordingly, an optical redefinition of the second has been widely discussed, prompting a need for the consistency of optical clocks to be verified worldwide. While satellite frequency links are sufficient to compare microwave clocks, a suitable method for comparing high-performance optical clocks over intercontinental distances is missing. Furthermore, remote comparisons over frequency links face fractional uncertainties of a few $10^{-18}$ due to imprecise knowledge of each clock's relativistic redshift, which stems from uncertainty in the geopotential determined at each distant location. Here, we report a landmark campaign towards the era of optical clocks, where, for the first time, state-of-the-art transportable optical clocks from Japan and Europe are brought together to demonstrate international comparisons that require neither a high-performance frequency link nor information on the geopotential difference between remote sites. Conversely, the reproducibility of the clocks after being transported between countries was sufficient to determine geopotential height offsets at the level of 4 cm. Our campaign paves the way for redefining the SI second and has a significant impact on various applications, including tests of general relativity, geodetic sensing for geosciences, precise navigation, and future timing networks.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Interspecies clock comparison below $5 \times 10^{-18}$ uncertainty with a transportable clock

    physics.atom-ph 2026-08 accept novelty 6.0 of 10

    The Yb+(E3)/Sr optical frequency ratio is measured with 4.3e-18 fractional uncertainty, a 3.5x improvement over the previous best, using a transportable Sr clock.

  2. Transportable strontium lattice clock with $4 \times 10^{-19}$ blackbody radiation shift uncertainty

    physics.atom-ph 2025-07 accept novelty 6.0 of 10

    A trailer-mounted 87Sr optical lattice clock reaches a 2.1×10^-18 total systematic uncertainty, with a 4.0×10^-19 blackbody radiation shift uncertainty enabled by a cold copper interrogation shield.

  3. Atomic clocks and gravitational waves as probes of non-metricity

    gr-qc 2026-01 reject novelty 5.0 of 10

    The paper claims existing gravitational-wave data already bound Weyl non-metricity, α²ω̄0<10⁻⁶⁹ GeV, via backreaction of a Planck-scale Weyl field, but a dropped kinetic term numerically exceeds the assumed sensitivity.

  4. Gravity potential determination based on China Space Station Dual-frequency microwave links frequency transfer

    physics.geo-ph 2024-12 conditional novelty 5.0 of 10

    A dual-frequency microwave link model for the China Space Station is shown in simulation to recover ground gravity potential with about 0.7 to 1.2 m²/s² uncertainty.

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