Measurements of the hyperfine structure of Rydberg states by microwave spectroscopy in Cs atoms
arXiv:2410.09520 · doi:10.1103/PhysRevA.110.042815
Abstract
We present measurements of hyperfine structure (HFS) of the Rydberg states for large principal quantum number range () employing the microwave spectroscopy in an ultra-cold cesium Rydberg ensemble. A microwave field with 30-s duration couples the transition, yielding a narrow linewidth spectroscopy that approaches the Fourier limit, which allows us to resolve the hyperfine structure of states. By analyzing the hyperfine splittings of states, we determine the magnetic-dipole HFS coupling constant GHz for state, GHz, and GHz for state, respectively. Systematic uncertainties caused by stray electromagnetic field, microwave field power and Rydberg interaction are analyzed. This measurement is significant for the investigation of Rydberg electrometry and quantum simulation with dipole interaction involving state.
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