IP Library Granted Patent US 12,455,308
Granted Patent B2
US 12,455,308 · App. 18/640,209 · Granted Oct 28, 2025

Atom-based closed-loop control for electromagnetic radiation measurement, communications, and information processing

Inventors: David A. Anderson (Ann Arbor, MI); Georg Raithel (Ann Arbor, MI)
Assignee: Rydberg Technologies Inc.
G01R29/0885G01R29/0892G01R29/10
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Quick Facts
Patent No.
US 12,455,308
App. No.
18/640,209
Granted
Oct 28, 2025
Kind
B2
Abstract

A method for atom-based closed-loop control includes exciting atoms of a gas into one or more Rydberg states, applying one or more signal processing functions to the one or more Rydberg states, and regulating a characteristic of the applied one or more signal processing functions based on, at least in part, a response of the one or more Rydberg states to the one or more signal processing functions. A system for internal quantum-state-space interferometry includes an atomic receiver, an interferometric pathway, and a detector. The interferometer includes an atomic vapor with first atomic states and second atomic states. The interferometric pathway from RF phases between the first and second atomic states is closed by a quantum-state-space. The detector is configured to detect a readout of an interferometric signal. Embodiments include atom-based automatic level control, baseband processors, phase-locked loops, voltage transducers, raster RF imagers and waveform analyzers.

Claims (42)

1. An atom-based closed-loop control system comprising:

a compartment enclosing a gas of excited atoms comprising one or more Rydberg states, wherein the compartment is configured to be exposed to external electromagnetic radiation;

a device configured to apply an input signal to the one or more Rydberg states;

a detector configured to detect a response of the one or more Rydberg states due to an interaction of the one or more Rydberg states with the external electromagnetic radiation; and

a controller configured to automatically adjust a characteristic of the applied input signal to a set point based on, at least in part, the detected response of the one or more Rydberg states to the external electromagnetic radiation.

2. The system of claim 1 , wherein:

the controller is further configured to automatically adjust the characteristic of the applied input signal based on a characteristic of the external electromagnetic radiation, and

the characteristic of the external electromagnetic radiation comprises a frequency, an amplitude, a phase, a polarization, a power, a direction of arrival, an angle of arrival, or a combination thereof.

3. The system of claim 1 , wherein the controller is further configured to adjust a control signal, a processing signal, or both based on the detected response of the one or more Rydberg states to the external electromagnetic radiation.

4. The system of claim 1 , wherein the controller is further configured to automatically adjust the characteristic based on differential feedback between the detected response and the set point.

5. The system of claim 1 , wherein the device is further configured to apply a fiduciary RF electromagnetic wave or a reference local oscillator wave.

6. The system of claim 1 , wherein the applied input signal comprises a plurality of fields for multi-field conditioning of the one or more Rydberg states.

7. The system of claim 1 , wherein the characteristic and the detected response are electronically synchronized, frequency-locked, phase-locked, or a combination thereof.

8. The system of claim 1 , wherein the controller is further configured to determine an electromagnetic spectrum.

9. The system of claim 1 , further comprising a multiplexer configured to parallelize or multiplex one or more combinations of optical and RF electromagnetic fields, interferometric pathways, or interferometric signals of the one or more Rydberg states.

10. The system of claim 9 , wherein the multiplexer is configured to apply spatial multiplexing, temporal multiplexing, frequency multiplexing, or a combination thereof.

11. The system of claim 9 , wherein the multiplexer is configured to provide increased detected RF bandwidth.

12. The system of claim 1 , wherein:

the input signal comprises a plurality of laser beams, and

the detected response is based on a multi-dimensional Doppler-match of parameters of the plurality of laser beams.

13. The system of claim 12 , wherein the multi-dimensional Doppler-match of parameters of the plurality of laser beams comprises at least two laser beams arranged with angles to suppress Doppler shifts in one dimension, two dimensions, three dimensions, or a combination thereof.

14. The system of claim 13 , wherein the plurality of laser beams comprises: three laser beams that are non-collinear to achieve a Doppler-match in two degrees of freedom, or four laser beams that are non-collinear to achieve a Doppler-match in three degrees of freedom.

15. A method for atom-based closed-loop control, the method comprising:

exciting atoms of a gas into one or more Rydberg states;

applying an input signal to the one or more Rydberg states;

detecting a response of the one or more Rydberg states due to an interaction of the one or more Rydberg states with external electromagnetic radiation; and

automatically adjusting a characteristic of the applied input signal to a set point based on, at least in part, the detected response of the one or more Rydberg states to the external electromagnetic radiation.

16. The method of claim 15 , further comprising analyzing modulated RF signals comprising communication protocols, Doppler shifts, and/or frequency chirps, or a combination thereof.

17. The method of claim 15 , further comprising multiplexing one or more combinations of optical and RF electromagnetic fields, interferometric pathways, or interferometric signals of the one or more Rydberg states.

18. The method of claim 15 , wherein the detecting comprises multi-dimensional Doppler-matching of parameters of a plurality of laser beams of the input signal.

19. The system of claim 1 , wherein the characteristic of the applied input signal comprises a frequency, an amplitude, a phase, a polarization, a power, a direction of travel, an angle of arrival, or a combination thereof.

20. The system of claim 1 , wherein the controller is further configured to provide semi-autonomous or autonomous closed-loop automatic adjustment of the characteristic of the applied input signal based on the detected response.

21. The system of claim 1 , wherein the characteristic of the applied input signal comprises a parameter of a laser beam interacting with the gas of excited atoms.

22. The system of claim 1 , wherein the characteristic of the applied input signal comprises a laser frequency, a laser phase, a laser amplitude, a laser polarization, or a combination thereof involved in exciting or interacting with the gas of excited atoms.

23. The system of claim 1 , wherein the characteristic of the applied input signal comprises a laser beam size involved in exciting or interacting with the gas of excited atoms.

24. The system of claim 1 , wherein the controller is further configured to adjust the characteristic of the applied input signal based on a second characteristic of the external electromagnetic radiation, an input RF signal, an applied reference signal, or a combination thereof.

25. The system of claim 1 , wherein the controller is further configured to achieve baseband or modulated signal processing for retrieving analog or digital information from the detected response of the one or more Rydberg states.

26. The method of claim 15 , wherein the characteristic of the applied input signal comprises a parameter of a laser beam interacting with the gas of excited atoms.

27. The method of claim 15 , wherein the characteristic of the applied input signal comprises a laser frequency, a laser phase, a laser amplitude, a laser polarization, or a combination thereof involved in exciting or interacting with the gas of excited atoms.

28. The method of claim 15 , wherein the characteristic of the applied input signal comprises a laser beam size involved in exciting or interacting with the gas of excited atoms.

29. The method of claim 15 , further comprising adjusting the characteristic of the applied input signal based on a second characteristic of the external electromagnetic radiation, an input RF signal, an applied reference signal, or a combination thereof.

30. The method of claim 15 , further comprising achieving baseband or modulated signal processing for retrieving analog or digital information from the detected response of the one or more Rydberg states.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2024
From: ANDERSON, DAVID A.; RAITHEL, GEORG
To: RYDBERG TECHNOLOGIES INC.
Reel/Frame 067640/0510 →
Continuity (5)
Continuation 18173290 · Feb 23, 2023
Continuation 17333503 · May 28, 2021
Provisional Application 63077244 · Sep 11, 2020
Provisional Application 63032041 · May 29, 2020
Related Publication 20250052800A1 · Feb 13, 2025
References Cited (58)
US 9970973B2 · Anderson et al. · 2018 [cited by applicant]
US 10509065B1 · Shaffer · 2019 [cited by examiner]
US 10605840B1 · Amarloo et al. · 2020 [cited by applicant]
US 10823775B2 · Anderson et al. · 2020 [cited by applicant]
US 10979147B2 · Gordon et al. · 2021 [cited by applicant]
US 20060187974A1 · Dantus · 2006 [cited by applicant]
US 20150192532A1 · Clevenson · 2015 [cited by examiner]
US 20160363617A1 · Anderson · 2016 [cited by examiner]
US 20170370979A1 · Braje et al. · 2017 [cited by applicant]
US 20190187198A1 · Anderson · 2019 [cited by examiner]
US 20200292606A1 · Holloway et al. · 2020 [cited by applicant]
US 20210048465A1 · Anderson et al. · 2021 [cited by applicant]
US 20220196716A1 · Anderson et al. · 2022 [cited by applicant]
US 20230243881A1 · Anderson et al. · 2023 [cited by applicant]
CN 106124856A · 2016 [cited by applicant]
CN 106842095A · 2017 [cited by applicant]
CN 109067682A · 2018 [cited by applicant]
JP 2014053661A · 2014 [cited by applicant]
WO 2016205330A1 · 2016 [cited by applicant]
WO 2019126038A1 · 2019 [cited by applicant]
WO 2020113147A1 · 2020 [cited by applicant]
Dunning, F. B., et al. “Engineering atomic Rydberg states with pulsed electric fields.” Journal of Physics B: Atomic, Molecular and Optical Physics 42.2 (2009): 022001. (Year: 2009). [cited by examiner]
Gerginov, Vladislav, et al. “An atomic sensor for direct detection of weak microwave signals.” IEEE Transactions on Microwave Theory and Techniques 67.8 (2019): 3485-3493. (Year: 2019). [cited by examiner]
Zhang, Li-Hua, et al. “Rydberg microwave-frequency-comb spectrometer.” Physical Review Applied 18.1 (2022): 014033. (Year: 2022). [cited by examiner]
Anderson et al., “A self-calibrating SI-traceable broadband Rydberg atom-based radio-frequency electric field probe and measurement instrument,” dated Oct. 18, 2019, 12 pages. [cited by applicant]
Anderson et al., “Rydberg atoms for radio-frequency communications and sensing: atomic receivers for pulsed RF field and phase detection,” dated Oct. 17, 2019, 10 pages. [cited by applicant]
Sapiro et al., “Time dependence of Rydberg EIT in pulsed optical and RF fields,” dated Apr. 3, 2020, 10 pages. [cited by applicant]
Sapiro et al., “Atom-based optical RF-power/voltage transducer and sensor,” dated Feb. 1, 2019, 1 page. [cited by applicant]
Anderson et al., “An atomic receiver for AM and FM radio communication,” dated Aug. 26, 2018, 6 pages. [cited by applicant]
Simons et al., “Embedding a Rydberg Atom-Based Sensor into an Antenna for Phase and Amplitude Detection of Radio-Frequency Fields and Modulated Signals,” dated Oct. 22, 2019, 10 pages. [cited by applicant]
Holloway et al., “A New Quantum-Based Power Standard: Using Rydberg Atoms for a SI-Traceable Radio-Frequency Power Measurement Technique in Rectangular Waveguides,” dated Jun. 25, 2018, 4 pages. [cited by applicant]
Gordon et al., “Broadband Rydberg Atom-Based Electric-Field Probe: From Self-Calibrated Measurements to Sub-Wavelength Imaging,” dated May 27, 2014, 13 pages. [cited by applicant]
Gordon et al., “Sub-Wavelength Imaging and Field Mapping via EIT and Autler-Townes Splitting in Rydberg Atoms,” dated Apr. 1, 2014, 13 pages. [cited by applicant]
Anderson et al., “Atom radio-frequency interferometry,” dated Oct. 26, 2020, 5 pages. [cited by applicant]
Holloway et al., “A Multiple-Band Rydberg-Atom Based Receiver/Antenna: AM/FM Stereo Reception,” dated Mar. 2, 2019, 10 pages. [cited by applicant]
Fan et al., “Atom based RF electric field sensing,” dated Sep. 9, 2015, 18 pages. [cited by applicant]
Simons et al., “A Rydberg Atom-Based Mixer: Measuring the Phase of a Radio Frequency Wave,” dated Mar. 18, 2019, 4 pages. [cited by applicant]
Holloway et al., “High-resolution near-field imaging and far-field antenna measurements with atomic sensors,” dated Aug. 17, 2018, 3 pages. [cited by applicant]
Holloway et al., “Detecting and Receiving Phase Modulated Signals with a Rydberg Atom-Based Mixer,” dated Mar. 27, 2019, 6 pages. [cited by applicant]
Simons et al., “Applications with a Rydberg Atom-based Radio Frequency Antenna/Receiver,” dated Sep. 2, 2019, 5 pages. [cited by applicant]
Simons et al., “Waveguide-integrated Rydberg Atom-based RF Field Detector for Near-field Antenna Measurements,” dated Oct. 6, 2019, 4 pages. [cited by applicant]
Holloway et al., “Detecting and Receiving Phase-Modulated Signals With a Rydberg Atom-Based Receiver,” dated Jul. 29, 2019, 5 pages. [cited by applicant]
Holloway et al., “Quantum Physics Meets Music: A “Real-Time” Guitar Recording Using Rydberg-Atoms and Electromagnetically Induced Transparency,” dated Apr. 2, 2019, 5 pages. [cited by applicant]
Gordon et al., “Weak Electric-Field Detection with Sub-1 Hz Resolution at Radio Frequencies Using a Rydberg Atom-Based Mixer,” dated Mar. 22, 2019, 5 pages. [cited by applicant]
Meyer et al., “Waveguide-coupled Rydberg spectrum analyzer from 0 to 20 GHZ,” dated Jan. 28, 2021, 10 pages. [cited by applicant]
Simons et al., “Rydberg Atom-based RF Power Measurements,” dated Nov. 4, 2018, 4 pages. [cited by applicant]
Holloway et al., “Rydberg-Atoms Based Radio-Frequency Electric Field and Power Sensors for Quantum SI-Traceable Measurements,” dated May 5, 2019, 2 pages. [cited by applicant]
Thaicharoen et al., “Electromagnetically induced transparency, absorption, and microwave-field sensing in a Rb vapor cell with a three-color all-infrared laser system,” dated Dec. 26, 2019, 9 pages. [cited by applicant]
Paradis et al., “Atomic measurements of high-intensity VHF-band radio-frequency fields with a Rydberg vapor-cell detector,” dated Jul. 30, 2019, 8 pages. [cited by applicant]
Thaicharoen et al., “Electromagnetically-induced transparency, absorption, and microwave field sensing in a Rb vapor cell with a three-color all-infrared laser system,” dated May 27, 2019, 9 pages. [cited by applicant]
Kumar et al., “Atom-Based Sensing of Weak Radio Frequency Electric Fields Using Homodyne Readout,” dated Feb. 20, 2017, 10 pages. [cited by applicant]
Carr et al., “Three-photon electromagnetically induced transparency using Rydberg states,” dated Aug. 3, 2012, 4 pages. [cited by applicant]
Yoon-Seok Lee and Han Seb Moon, “Doppler-free three-photon coherence in Doppler-broadened diamond-type atomic system,” dated Mar. 6, 2017, 11 pages. [cited by applicant]
International Search Report and Written Opinion of the International Searching Authority for International Application No. PCT/US2021/034935, European Patent Office, Rijswijk, The Netherlands, mailed Oct. 14, 2021. [cited by applicant]
Kumar et al., “Rydberg-atom based radio-frequency electrometry using frequency modulation spectroscopy in room temperature vapor cells,” arxiv.org, 1702.0049vl, Cornell University Library, dated Feb. 2, 2017, XP08099556… [cited by applicant]
Bertalan Juhasz, Eberhard Widmann, and S. Federmann, “Measurement of the ground-state hyperfine splitting of antihydrogen,” Journal of Physics: Conference Series, vol. 335. No. 1, IOP Publishing, 2011, 8 pages. [cited by applicant]
Han et al., “Adiabatic potentials of cesium (nDJ)2 Rydberg-Rydberg macrodimers,” Journal of Physics B: Atomic, Molecular and Optical Physics, vol. 52, No. 13, Jun. 12, 2018; pp. 1-6. [cited by applicant]
Notice of Reasons for Refusal for Japanese Application No. 2022-570229, dated Jan. 17, 2025, 8 pages. [cited by applicant]