Continuous-time ultrahigh-frequency sensing using cold Rydberg atoms
Jamieson, Matt J. and Adams, C. Stuart and Weatherill, Kevin J. and Hanley, Ryan K. and Alves, Natalia and Keaveney, James (2025) Continuous-time ultrahigh-frequency sensing using cold Rydberg atoms. Physical Review Applied, 24 (034022). 034022. ISSN 2331-7043 (https://doi.org/10.1103/2vxb-czvz)
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Abstract
We present a technique for detecting ultrahigh-frequency (UHF) radio fields using a three-photon Rydberg excitation scheme in a continuously laser-cooled sample of 87Rb atoms. By measuring Autler-Townes splitting, we demonstrate resonant detection of UHF fields with frequency range around 500–900 MHz through probing F →G transitions, achieving a lowest minimum detectable field of 2.5(6) mV/cm at 899 MHz. We also demonstrate continuous-time detection of a modulated rf signal, with a 3-dB bandwidth of 5.7(4) kHz at a carrier frequency of 899 MHz. Our approach employs atom loss spectroscopy rather than electromagnetically induced transparency , which enables detection while the atomic sample is simultaneously laser-cooled. We investigate this operating regime to determine the feasibility of combining the benefits of reduced thermal dephasing (and subsequent increased sensitivity) of cold atoms with the continuous operation associated with thermal atoms. Our continuous-time detection scheme provides an advantage over existing pulsed cold atom systems as we avoid the slow experimental duty cycles typically associated with replenishing the cold atom ensemble. We characterize the excitation scheme by varying laser detunings and analyze the impact and limitations due to various broadening mechanisms on the detection sensitivity.
ORCID iDs
Jamieson, Matt J.
ORCID: https://orcid.org/0000-0003-2614-9340, Adams, C. Stuart, Weatherill, Kevin J., Hanley, Ryan K., Alves, Natalia and Keaveney, James;
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Item type: Article ID code: 96976 Dates: DateEvent8 September 2025Published11 August 2025AcceptedSubjects: Science > Physics Department: Faculty of Science > Physics Depositing user: Pure Administrator Date deposited: 06 Aug 2026 10:28 Last modified: 12 Sep 2026 03:01 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/96976
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