Optimal State Choice for Rydberg Atom Microwave Sensors
Aur\'elien Chopinaud, Jonathan D. Pritchard

TL;DR
This paper compares different Rydberg atom couplings for microwave sensing using EIT, identifying optimal states for robust measurements and demonstrating microwave polarization detection, with strong experimental-theoretical agreement.
Contribution
It provides a systematic comparison of Rydberg couplings for microwave sensing and identifies optimal states for improved device robustness.
Findings
Multi-photon couplings affect EIT splitting symmetry and linearity.
Optimal Rydberg states for microwave measurement are identified.
Microwave polarization can be measured in a new regime.
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 , , and 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…
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