Rydberg Dipole Antennas
ORAL
Abstract
Measurements of microwave frequency electric fields by traditional methods (i.e. engineered antennas) have limited sensitivity and can be difficult to calibrate properly. A useful tool to address this problem are highly-excited (Rydberg) neutral atoms which have very large electric-dipole moments and many dipole-allowed transitions in the range of 1--500 GHz. Using Rydberg states, it is possible to sensitively probe the electric field in this frequency range using the combination of two quantum interference phenomena: electromagnetically induced transparency and the Autler-Townes effect. This atom-light interaction can be modeled by the classical description of a harmonically bound electron. The classical damped, driven, coupled-oscillators model yields significant insights into the deep connections between classical and quantum physics. We will present a detailed experimental analysis of the noise processes in making such measurements in the laboratory and discuss the prospects for building a practical atomic microwave receiver.
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Authors
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Daniel Stack
MITRE Corp
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Bradon Rodenburg
MITRE Corp
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Stephen Pappas
MITRE Corp
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Wangshen Su
MITRE Corp
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Marc St. John
MITRE Corp
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Paul Kunz
US Army Research Laboratory, U.S. Army Research Laboratory
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Matthew Simons
National Institute of Standards and Technology
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Joshua Gordon
National Institute of Standards and Technology
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Christopher Holloway
National Institute of Standards and Technology