arXiv · 1407.1381
Quantum engineering of atomic phase-shifts in optical clocks
Abstract
Quantum engineering of time-separated Raman laser pulses in three-level systems is presented to produce an ultra-narrow optical transition in bosonic alkali-earth clocks free from light shifts and with a significantly reduced sensitivity to laser parameter fluctuations. Based on a quantum artificial complex-wave-function analytical model, and supported by a full density matrix simulation including a possible residual effect of spontaneous emission from the intermediate state, atomic phase-shifts associated to Ramsey and Hyper-Ramsey two-photon spectroscopy in optical clocks are derived. Various common-mode Raman frequency detunings are found where the frequency shifts from off-resonant states are canceled, while strongly reducing their uncertainties at the 10$^{-18}$ level of accuracy.
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T. Zanon-Willette, S. Almonacil, E. de Clercq, A. D. Ludlow, E. Arimondo. 2014-11-14. Quantum engineering of atomic phase-shifts in optical clocks. https://doi.org/10.1103/physreva.90.053427
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