English

Driving alkali Rydberg transitions with a phase-modulated optical lattice

Atomic Physics 2023-07-26 v1 Quantum Physics

Abstract

We develop and demonstrate a spectroscopic method for Rydberg-Rydberg transitions using a phase-controlled and -modulated, standing-wave laser field focused on a cloud of cold 85^{85}Rb Rydberg atoms. The method is based on the ponderomotive (A2{\bf{A}}^2) interaction of the Rydberg electron, which has less-restrictive selection rules than electric-dipole couplings, allowing us to probe both nS1/2nP1/2nS_{1/2}\rightarrow nP_{1/2} and nS1/2(n+1)S1/2nS_{1/2}\rightarrow (n+1)S_{1/2} transitions in first-order. Without any need to increase laser power, third and fourth-order sub-harmonic drives are employed to access Rydberg transitions in the 40 to 70 GHz frequency range using widely-available optical phase modulators in the Ku-band (12 to 18 GHz). Measurements agree well with simulations based on the model we develop. The spectra have prominent Doppler-free, Fourier-limited components. The method paves the way for optical Doppler-free high-precision spectroscopy of Rydberg-Rydberg transitions and for spatially-selective qubit manipulation with μ\mum-scale resolution in Rydberg-based simulators and quantum computers.

Keywords

Cite

@article{arxiv.2210.01874,
  title  = {Driving alkali Rydberg transitions with a phase-modulated optical lattice},
  author = {Ryan Cardman and Georg Raithel},
  journal= {arXiv preprint arXiv:2210.01874},
  year   = {2023}
}