Atomic 2D electric field imaging of a Yagi–Uda antenna near-field using a portable Rydberg-atom probe and measurement instrument
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Ryan Cardman
Abstract
We present electric field measurements and imaging of a Yagi–Uda antenna near-field using a Rydberg atom–based radio frequency electric field measurement instrument. The instrument uses electromagnetically induced transparency with Rydberg states of cesium atoms in a room-temperature vapor and off-resonant RF-field–induced Rydberg-level shifts for optical SI-traceable measurements of RF electric fields over a wide amplitude and frequency range. The electric field along the antenna boresight is measured using the atomic probe at a spatial resolution of
Funding source: Rydberg Technologies
Funding source: Defense Advanced Research Projects Agency
Funding source: Army Contracting Command-Aberdeen Proving Grounds
Award Identifier / Grant number: W911NF-17-C-0007
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Not to be confused with dBi, which represents the antenna gain relative to an isotropic emitter.
Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.
Research funding: This work was supported by Rydberg Technologies Inc. Part of the presented material is based upon work supported by the Defense Advanced Research Projects Agency (DARPA) and the Army Contracting Command-Aberdeen Proving Grounds (ACC-APG) under Contract Number W911NF-17-C-0007. The views, opinions and/or findings expressed are those of the author and should not be interpreted as representing the official views or policies of the Department of Defense or the U.S. Government.
Conflict of interest statement: The authors declare no conflicts of interest regarding this article.
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Articles in the same Issue
- Frontmatter
- Community
- News
- Views
- Cold atom interferometry for inertial sensing in the field
- Quantum sensing with nanoparticles for gravimetry: when bigger is better
- Topical Issue: Applied Quantum Technologies; Guest Editors: Markus Krutzik, John Close, and Daniel Oi
- Editorial
- Answers for some of the biggest questions may be given by the very smallest
- Letters
- Probing Bloch oscillations using a slow-light sensor
- Optically pumped magnetometers enable a new level of biomagnetic measurements
- Research Articles
- Numeric estimation of resource requirements for a practical polarization-frame alignment scheme for quantum key distribution (QKD)
- Adaptive optics benefit for quantum key distribution uplink from ground to a satellite
- Fast and robust optically pumped cesium magnetometer
- Combining a quantum random number generator and quantum-resistant algorithms into the GnuGPG open-source software
- Towards a compact, optically interrogated, cold-atom microwave clock
- Atomic 2D electric field imaging of a Yagi–Uda antenna near-field using a portable Rydberg-atom probe and measurement instrument
- Review Article
- Transportable optical atomic clocks for use in out-of-the-lab environments