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Rydberg Electrometry for Optical Lattice Clocks

Atomic Physics 2017-08-30 v1

Abstract

Electrometry is performed using Rydberg states to evaluate the quadratic Stark shift of the 5s25s^2 1S05s5p^1\textrm{S}_0-5s5p 3P0^3\textrm{P}_0 clock transition in strontium. By measuring the Stark shift of the highly excited 5s75d  1D25s75d\;^1\textrm{D}_2 state using electromagnetically induced transparency, we characterize the electric field with sufficient precision to provide tight constraints on the systematic shift to the clock transition. Using the theoretically derived, and experimentally verified, polarizability for this Rydberg state we can measure the residual field with an uncertainty well below 1Vm11 \textrm{V} \textrm{m}^{-1}. This resolution allows us to constrain the fractional frequency uncertainty of the quadratic Stark shift of the clock transition to 2×10202\times10^{-20}.

Keywords

Cite

@article{arxiv.1706.01944,
  title  = {Rydberg Electrometry for Optical Lattice Clocks},
  author = {William Bowden and Richard Hobson and Paul Huillery and Patrick Gill and Matthew P. A. Jones and Ian R. Hill},
  journal= {arXiv preprint arXiv:1706.01944},
  year   = {2017}
}

Comments

7 pages, 5 figures

R2 v1 2026-06-22T20:11:05.543Z