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High-Stability Single-Ion Clock with $5.5\times10^{-19}$ Systematic Uncertainty

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arxiv 2504.13071 v2 pith:PVOQTW72 submitted 2025-04-17 physics.atom-ph quant-ph

classification physics.atom-phquant-ph
keywords clocksystematictimes10uncertaintyfieldfractionalfrequencylogic
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We report a single-ion optical atomic clock with fractional frequency uncertainty of $5.5\times10^{-19}$ and fractional frequency stability of $3.5 \times10^{-16}/\sqrt{\tau/\mathrm{s}}$, based on quantum logic spectroscopy of a single $^{27}$Al$^+$ ion. A co-trapped $^{25}$Mg$^+$ ion provides sympathetic cooling and quantum logic readout of the $^{27}$Al$^+$ $^1$S$_0\leftrightarrow^3$P$_0$ clock transition. A Rabi probe duration of 1 s, enabled by laser stability transfer from a remote cryogenic silicon cavity across a 3.6 km fiber link, results in a threefold reduction in instability compared to previous $^{27}$Al$^+$ clocks. Systematic uncertainties are lower due to an improved ion trap electrical design, which reduces excess micromotion, and a new vacuum system, which reduces collisional shifts. We also perform a direction-sensitive measurement of the ac magnetic field due to the RF ion trap, eliminating systematic uncertainty due to field orientation.

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Cited by 2 Pith papers

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  1. Bound-state beta decay of tritium: Path to first observation and novel approach to direct neutrino mass measurement

    hep-ph 2026-07 conditional novelty 7.0 of 10

    Tritium bound-state beta decay could be seen in 3He de-excitation photons, and neutrino mass read from Doppler broadening of those emission lines.

  2. Frequency reproducibility of solid-state Th-229 nuclear clocks

    physics.atom-ph 2025-07 accept novelty 7.0 of 10

    The 229Th:CaF2 nuclear clock transition frequency is reproducible to 280 Hz (1.4e-13) between two differently doped crystals over four months at the zero-shift temperature of 195 K.

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