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Sub-kHz excitation lasers for Quantum Information Processing with Rydberg atoms

Atomic Physics 2018-03-23 v2

Abstract

Quantum information processing using atomic qubits requires narrow linewidth lasers with long-term stability for high fidelity coherent manipulation of Rydberg states. In this paper, we report on the construction and characterization of three continuous-wave (CW) narrow linewidth lasers stabilized simultaneously to an ultra-high finesse Fabry-Perot cavity made of ultra-low expansion (ULE) glass, with a tunable offset-lock frequency. One laser operates at 852~nm while the two locked lasers at 1018~nm are frequency doubled to 509~nm for excitation of 133^{133}Cs atoms to Rydberg states. The optical beatnote at 509~nm is measured to be 260(5)~Hz. We present measurements of the offset between the atomic and cavity resonant frequencies using electromagnetically induced transparency (EIT) for high-resolution spectroscopy on a cold atom cloud. The long-term stability is determined from repeated spectra over a period of 20 days yielding a linear frequency drift of 1\sim1~Hz/s.

Keywords

Cite

@article{arxiv.1711.02645,
  title  = {Sub-kHz excitation lasers for Quantum Information Processing with Rydberg atoms},
  author = {R. Legaie and C. J. Picken and J. D. Pritchard},
  journal= {arXiv preprint arXiv:1711.02645},
  year   = {2018}
}

Comments

13 pages, 6 figures

R2 v1 2026-06-22T22:39:13.651Z