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Compact transportable 171Yb+ single-ion optical fully automated clock with 4.9E-16 relative instability

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arxiv 2010.15244 v3 pith:SDXVMIM5 submitted 2020-10-24 physics.ins-det physics.app-phphysics.opticsquant-ph

Compact transportable 171Yb+ single-ion optical fully automated clock with 4.9E-16 relative instability

classification physics.ins-det physics.app-phphysics.opticsquant-ph
keywords opticalsignalautomatedclockcompacte-16fullyinstability
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The paper describes the results achieved in the development of the compact transportable fully automated optical clock based on a single 171Yb+ ion in a radiofrequency (RF) quadrupole trap. The resulted measurements demonstrated the 4.9E-16 output RF signal relative instability on 1000 s integration time with 298.1 kg weight, 0.921 volume, and 2.766 kW input power consumption of the device. A transformation of the ultrastable optical signal into the RF range was performed via the optical frequency comb with a supercontinuum fiber laser generator. The transformation was conducted without loss of initial stability and accuracy characteristics of the signal.

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  1. An Al$^+$ clock with $1.6\times10^{-18}$ systematic uncertainty and its frequency ratios

    physics.atom-ph 2026-06 unverdicted novelty 5.0

    An Al+ single-ion clock is evaluated at 1.6×10^{-18} systematic uncertainty with absolute frequency 1121015393207859.19(24) Hz and ratio to Sr clock of 2.611701431781462668(36).