English

Optimal State Choice for Rydberg Atom Microwave Sensors

Atomic Physics 2021-08-09 v2

Abstract

Rydberg electromagnetically induced transparency (EIT) enables realization of atom-based SI-traceable microwave (MW) sensing, imaging and communication devices by exploiting the strong microwave electric dipole coupling of highly excited Rydberg states. Essential to the development of robust devices is a careful characterization of sensor performance and systematic uncertainties. In this work we present a comparison of microwave-induced EIT splitting in a cesium atomic vapor for four possible Rydberg couplings 65S1/265P1/265S_{1/2}\rightarrow 65P_{1/2}, 66S1/266P3/266S_{1/2}\rightarrow 66P_{3/2}, 79D5/281P3/279D_{5/2}\rightarrow 81P_{3/2} and 62D5/260F7/262D_{5/2}\rightarrow 60F_{7/2} at microwave transition frequencies around 13 GHz. Our work highlights the impact of multi-photon couplings to neighboring Rydberg states in breaking both the symmetry and linearity of the observed splitting, with excellent agreement between experimental observations and a theoretical model accounting for multi-photon couplings. We identify an optimal angular state choice for robust microwave measurements, as well as demonstrating a new regime in which microwave polarization can be measured.

Keywords

Cite

@article{arxiv.2105.12657,
  title  = {Optimal State Choice for Rydberg Atom Microwave Sensors},
  author = {Aurélien Chopinaud and Jonathan D. Pritchard},
  journal= {arXiv preprint arXiv:2105.12657},
  year   = {2021}
}
R2 v1 2026-06-24T02:29:38.162Z