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Interfacing Rydberg atoms with a chip-based superconducting microwave resonator using an ac-Stark-shifted single-photon transition

L. L. Brown, I. K. Bhangoo, and S. D. Hogan

Phys. Rev. A 113, 013709 – Published 5 January, 2026

DOI: https://doi.org/10.1103/hzd4-1x22

Abstract

Helium atoms in the 1s50sS13 Rydberg level have been resonantly coupled to the 2π×11.722GHz second harmonic mode of a chip-based superconducting coplanar wave-guide microwave resonator. To achieve this, the single-photon electric-dipole-allowed 1s50sS13 → 1s50pPJ3 transition was tuned into resonance with the resonator mode through the ac Stark shift induced by a second strong 2π×3.350GHz microwave dressing field. The effects of this dressing field, and residual uncanceled dc electric fields at the location of the atoms close to the superconducting chip surface were interpreted with support from Floquet calculations of the energy level structure of the Rydberg states. To observe appreciable population transfer in the 1µs atom-resonator interaction time using this transition, which had an electric dipole moment of 1500ea0, pulsed microwave fields were injected into the resonator. From the photon occupation number in the resonator mode under these conditions, the single-photon Rabi frequency associated with the coupling of the atoms to the resonator was estimated to be ∼2π×100Hz. These results represent an important step toward operation of this Rydberg-atom–superconducting-circuit interface in the single-photon strong-coupling regime.

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References (26)

  1. R. J. Schoelkopf and S. M. Girvin, Wiring up quantum systems, Nature (London) 451, 664 (2008).
  2. L. Henriet, L. Beguin, A. Signoles, T. Lahaye, A. Browaeys, G.-O. Reymond, and C. Jurczak, Quantum computing with neutral atoms, Quantum 4, 327 (2020).
  3. A. Blais, A. L. Grimsmo, S. M. Girvin, and A. Wallraff, Circuit quantum electrodynamics, Rev. Mod. Phys. 93, 025005 (2021).
  4. D. Petrosyan, K. Mølmer, J. Fortágh, and M. Saffman, Microwave to optical conversion with atoms on a superconducting chip, New J. Phys. 21, 073033 (2019).
  5. J. Han, T. Vogt, C. Gross, D. Jaksch, M. Kiffner, and W. Li, Coherent microwave-to-optical conversion via six-wave mixing in Rydberg atoms, Phys. Rev. Lett. 120, 093201 (2018).
  6. D. Petrosyan, J. Fortágh, and G. Kurizki, Coherent interface between optical and microwave photons on an integrated superconducting atom chip, EPJ Quantum Technol. 11, 18 (2024).
  7. L. F. Keary and J. D. Pritchard, Strong coupling and active cooling in a finite-temperature hybrid atom-cavity system, Phys. Rev. A 105, 013707 (2022).
  8. A. A. Morgan and S. D. Hogan, Coupling Rydberg atoms to microwave fields in a superconducting coplanar waveguide resonator, Phys. Rev. Lett. 124, 193604 (2020).
  9. D. M. Walker, A. A. Morgan, and S. D. Hogan, Cavity-enhanced Ramsey spectroscopy at a Rydberg-atom–superconducting-circuit interface, Appl. Phys. Lett. 117, 204001 (2020).
  10. L. L. Brown, J. A. L. Grondin, and S. D. Hogan, Demonstration of a tunable interface between Rydberg atoms and superconducting microwave circuits with differential polarizability nulling, Phys. Rev. A 110, 022615 (2024).
  11. D. M. Walker, L. L. Brown, and S. D. Hogan, Electrometry of a single resonator mode at a Rydberg-atom–superconducting-circuit interface, Phys. Rev. A 105, 022626 (2022).
  12. M. Kaiser, C. Glaser, L. Y. Ley, J. Grimmel, H. Hattermann, D. Bothner, D. Koelle, R. Kleiner, D. Petrosyan, A. Günther, and J. Fortágh, Cavity-driven Rabi oscillations between Rydberg states of atoms trapped on a superconducting atom chip, Phys. Rev. Res. 4, 013207 (2022).
  13. H. Hattermann, M. Mack, F. Karlewski, F. Jessen, D. Cano, and J. Fortágh, Detrimental adsorbate fields in experiments with cold Rydberg gases near surfaces, Phys. Rev. A 86, 022511 (2012).
  14. P. Bohlouli-Zanjani, J. A. Petrus, and J. D. D. Martin, Enhancement of Rydberg atom interactions using ac Stark shifts, Phys. Rev. Lett. 98, 203005 (2007).
  15. S. S. Hodgman, R. G. Dall, L. J. Byron, K. G. H. Baldwin, S. J. Buckman, and A. G. Truscott, Metastable helium: A new determination of the longest atomic excited-state lifetime, Phys. Rev. Lett. 103, 053002 (2009).
  16. T. Halfmann, J. Koensgen, and K. Bergmann, A source for a high-intensity pulsed beam of metastable helium atoms, Meas. Sci. Technol. 11, 1510 (2000).
  17. S. D. Hogan, Y. Houston, and B. Wei, Laser photoexcitation of Rydberg states in helium with n>400, J. Phys. B: At. Mol. Opt. Phys. 51, 145002 (2018).
  18. U. Fano, Effects of configuration interaction on intensities and phase shifts, Phys. Rev. 124, 1866 (1961).
  19. S. Probst, F. B. Song, P. A. Bushev, A. V. Ustinov, and M. Weides, Efficient and robust analysis of complex scattering data under noise in microwave resonators, Rev. Sci. Instrum. 86, 024706 (2015).
  20. G. W. F. Drake, High precision theory of atomic helium, Phys. Scr. 1999, 83 (1999).
  21. T.-S. Ho, S.-I. Chu, and J. V. Tietz, Semiclassical many-mode floquet theory, Chem. Phys. Lett. 96, 464 (1983).
  22. M. L. Zimmerman, M. G. Littman, M. M. Kash, and D. Kleppner, Stark structure of the Rydberg states of alkali-metal atoms, Phys. Rev. A 20, 2251 (1979).
  23. H. J. Metcalf and P. van der Straten, Laser Cooling and Trapping (Springer-Verlag, New York, 1999).
  24. F. Bardou, O. Emile, J.-M. Courty, C. I. Westbrook, and A. Aspect, Magneto-Optical trapping of metastable helium: Collisions in the presence of resonant light, Europhys. Lett. 20, 681 (1992).
  25. W. Rooijakkers, W. Hogervorst, and W. Vassen, Laser deceleration and trapping of metastable helium atoms, Opt. Commun. 135, 149 (1997).
  26. J. M. Sage, V. Bolkhovsky, W. D. Oliver, B. Turek, and P. B. Welander, Study of loss in superconducting coplanar waveguide resonators, J. Appl. Phys. 109, 063915 (2011).

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