Coherent spectroscopy with a single antiproton spin

Research output: Contribution to journalArticleResearchpeer review

Authors

  • B. M. Latacz
  • S. R. Erlewein
  • M. Fleck
  • J. I. Jäger
  • F. Abbass
  • B. P. Arndt
  • P. Geissler
  • T. Imamura
  • M. Leonhardt
  • P. Micke
  • A. Mooser
  • D. Schweitzer
  • F. Voelksen
  • E. Wursten
  • H. Yildiz
  • K. Blaum
  • J. A. Devlin
  • Y. Matsuda
  • C. Ospelkaus
  • W. Quint
  • A. Soter
  • J. Walz
  • Y. Yamazaki
  • C. Smorra
  • S. Ulmer

Research Organisations

External Research Organisations

  • CERN
  • Ulmer Fundamental Symmetries Laboratory
  • University Hospital Düsseldorf
  • Max Planck Institute for Nuclear Physics
  • University of Tokyo
  • GSI Helmholtz Centre for Heavy Ion Research
  • Physikalisch-Technische Bundesanstalt PTB
  • Johannes Gutenberg University Mainz
  • Imperial College London
  • ETH Zurich
View graph of relations

Details

Original languageEnglish
Pages (from-to)64-68
Number of pages5
JournalNATURE
Volume644
Issue number8075
Publication statusPublished - 7 Aug 2025

Abstract

Coherent quantum transition spectroscopy is a powerful tool in metrology1, quantum information processing2, magnetometry3 and precision tests of the standard model4. It was applied with great success in proton and deuteron magnetic moment measurements5, which culminated in maser spectroscopy with sub-parts-per-trillion resolution6 and many other experiments at the forefront of physics7. All of these experiments were performed on macroscopic ensembles of particles, whereas the coherent spectroscopy of a ‘free’ single nuclear spin has, to our knowledge, never been reported before. Here we demonstrate coherent quantum transition spectroscopy of the spin of a single antiproton stored in a cryogenic Penning-trap system. We apply a multi-trap technique8, detect the antiproton spin state using the continuous Stern–Gerlach effect9 and transport the particle to the homogeneous magnetic field of a precision trap (PT). Here we induce the coherent dynamics and analyse the result by quantum-projection measurements in the analysis trap (AT)10. We observe, for the first time, Rabi oscillations of an antiproton spin and achieve in time-series measurements spin-inversion probabilities greater than 80% at spin coherence times of about 50 s. Scans of single-particle spin resonances show inversions greater than 70%, at transition linewidths 16 times narrower than in previous measurements8, limited by cyclotron frequency measurement decoherence. This achievement marks a notable step towards at least tenfold improved tests of matter/antimatter symmetry using proton and antiproton magnetic moments.

ASJC Scopus subject areas

Cite this

Coherent spectroscopy with a single antiproton spin. / Latacz, B. M.; Erlewein, S. R.; Fleck, M. et al.
In: NATURE, Vol. 644, No. 8075, 07.08.2025, p. 64-68.

Research output: Contribution to journalArticleResearchpeer review

Latacz, BM, Erlewein, SR, Fleck, M, Jäger, JI, Abbass, F, Arndt, BP, Geissler, P, Imamura, T, Leonhardt, M, Micke, P, Mooser, A, Schweitzer, D, Voelksen, F, Wursten, E, Yildiz, H, Blaum, K, Devlin, JA, Matsuda, Y, Ospelkaus, C, Quint, W, Soter, A, Walz, J, Yamazaki, Y, Smorra, C & Ulmer, S 2025, 'Coherent spectroscopy with a single antiproton spin', NATURE, vol. 644, no. 8075, pp. 64-68. https://doi.org/10.1038/s41586-025-09323-1
Latacz, B. M., Erlewein, S. R., Fleck, M., Jäger, J. I., Abbass, F., Arndt, B. P., Geissler, P., Imamura, T., Leonhardt, M., Micke, P., Mooser, A., Schweitzer, D., Voelksen, F., Wursten, E., Yildiz, H., Blaum, K., Devlin, J. A., Matsuda, Y., Ospelkaus, C., ... Ulmer, S. (2025). Coherent spectroscopy with a single antiproton spin. NATURE, 644(8075), 64-68. https://doi.org/10.1038/s41586-025-09323-1
Latacz BM, Erlewein SR, Fleck M, Jäger JI, Abbass F, Arndt BP et al. Coherent spectroscopy with a single antiproton spin. NATURE. 2025 Aug 7;644(8075):64-68. doi: 10.1038/s41586-025-09323-1
Latacz, B. M. ; Erlewein, S. R. ; Fleck, M. et al. / Coherent spectroscopy with a single antiproton spin. In: NATURE. 2025 ; Vol. 644, No. 8075. pp. 64-68.
Download
@article{79b711b096814948bd8ca9f1a9e82201,
title = "Coherent spectroscopy with a single antiproton spin",
abstract = "Coherent quantum transition spectroscopy is a powerful tool in metrology1, quantum information processing2, magnetometry3 and precision tests of the standard model4. It was applied with great success in proton and deuteron magnetic moment measurements5, which culminated in maser spectroscopy with sub-parts-per-trillion resolution6 and many other experiments at the forefront of physics7. All of these experiments were performed on macroscopic ensembles of particles, whereas the coherent spectroscopy of a {\textquoteleft}free{\textquoteright} single nuclear spin has, to our knowledge, never been reported before. Here we demonstrate coherent quantum transition spectroscopy of the spin of a single antiproton stored in a cryogenic Penning-trap system. We apply a multi-trap technique8, detect the antiproton spin state using the continuous Stern–Gerlach effect9 and transport the particle to the homogeneous magnetic field of a precision trap (PT). Here we induce the coherent dynamics and analyse the result by quantum-projection measurements in the analysis trap (AT)10. We observe, for the first time, Rabi oscillations of an antiproton spin and achieve in time-series measurements spin-inversion probabilities greater than 80% at spin coherence times of about 50 s. Scans of single-particle spin resonances show inversions greater than 70%, at transition linewidths 16 times narrower than in previous measurements8, limited by cyclotron frequency measurement decoherence. This achievement marks a notable step towards at least tenfold improved tests of matter/antimatter symmetry using proton and antiproton magnetic moments.",
author = "Latacz, {B. M.} and Erlewein, {S. R.} and M. Fleck and J{\"a}ger, {J. I.} and F. Abbass and Arndt, {B. P.} and P. Geissler and T. Imamura and M. Leonhardt and P. Micke and A. Mooser and D. Schweitzer and F. Voelksen and E. Wursten and H. Yildiz and K. Blaum and Devlin, {J. A.} and Y. Matsuda and C. Ospelkaus and W. Quint and A. Soter and J. Walz and Y. Yamazaki and C. Smorra and S. Ulmer",
note = "Publisher Copyright: {\textcopyright} The Author(s) 2025.",
year = "2025",
month = aug,
day = "7",
doi = "10.1038/s41586-025-09323-1",
language = "English",
volume = "644",
pages = "64--68",
journal = "NATURE",
issn = "0028-0836",
publisher = "Nature Research",
number = "8075",

}

Download

TY - JOUR

T1 - Coherent spectroscopy with a single antiproton spin

AU - Latacz, B. M.

AU - Erlewein, S. R.

AU - Fleck, M.

AU - Jäger, J. I.

AU - Abbass, F.

AU - Arndt, B. P.

AU - Geissler, P.

AU - Imamura, T.

AU - Leonhardt, M.

AU - Micke, P.

AU - Mooser, A.

AU - Schweitzer, D.

AU - Voelksen, F.

AU - Wursten, E.

AU - Yildiz, H.

AU - Blaum, K.

AU - Devlin, J. A.

AU - Matsuda, Y.

AU - Ospelkaus, C.

AU - Quint, W.

AU - Soter, A.

AU - Walz, J.

AU - Yamazaki, Y.

AU - Smorra, C.

AU - Ulmer, S.

N1 - Publisher Copyright: © The Author(s) 2025.

PY - 2025/8/7

Y1 - 2025/8/7

N2 - Coherent quantum transition spectroscopy is a powerful tool in metrology1, quantum information processing2, magnetometry3 and precision tests of the standard model4. It was applied with great success in proton and deuteron magnetic moment measurements5, which culminated in maser spectroscopy with sub-parts-per-trillion resolution6 and many other experiments at the forefront of physics7. All of these experiments were performed on macroscopic ensembles of particles, whereas the coherent spectroscopy of a ‘free’ single nuclear spin has, to our knowledge, never been reported before. Here we demonstrate coherent quantum transition spectroscopy of the spin of a single antiproton stored in a cryogenic Penning-trap system. We apply a multi-trap technique8, detect the antiproton spin state using the continuous Stern–Gerlach effect9 and transport the particle to the homogeneous magnetic field of a precision trap (PT). Here we induce the coherent dynamics and analyse the result by quantum-projection measurements in the analysis trap (AT)10. We observe, for the first time, Rabi oscillations of an antiproton spin and achieve in time-series measurements spin-inversion probabilities greater than 80% at spin coherence times of about 50 s. Scans of single-particle spin resonances show inversions greater than 70%, at transition linewidths 16 times narrower than in previous measurements8, limited by cyclotron frequency measurement decoherence. This achievement marks a notable step towards at least tenfold improved tests of matter/antimatter symmetry using proton and antiproton magnetic moments.

AB - Coherent quantum transition spectroscopy is a powerful tool in metrology1, quantum information processing2, magnetometry3 and precision tests of the standard model4. It was applied with great success in proton and deuteron magnetic moment measurements5, which culminated in maser spectroscopy with sub-parts-per-trillion resolution6 and many other experiments at the forefront of physics7. All of these experiments were performed on macroscopic ensembles of particles, whereas the coherent spectroscopy of a ‘free’ single nuclear spin has, to our knowledge, never been reported before. Here we demonstrate coherent quantum transition spectroscopy of the spin of a single antiproton stored in a cryogenic Penning-trap system. We apply a multi-trap technique8, detect the antiproton spin state using the continuous Stern–Gerlach effect9 and transport the particle to the homogeneous magnetic field of a precision trap (PT). Here we induce the coherent dynamics and analyse the result by quantum-projection measurements in the analysis trap (AT)10. We observe, for the first time, Rabi oscillations of an antiproton spin and achieve in time-series measurements spin-inversion probabilities greater than 80% at spin coherence times of about 50 s. Scans of single-particle spin resonances show inversions greater than 70%, at transition linewidths 16 times narrower than in previous measurements8, limited by cyclotron frequency measurement decoherence. This achievement marks a notable step towards at least tenfold improved tests of matter/antimatter symmetry using proton and antiproton magnetic moments.

UR - http://www.scopus.com/inward/record.url?scp=105011341610&partnerID=8YFLogxK

U2 - 10.1038/s41586-025-09323-1

DO - 10.1038/s41586-025-09323-1

M3 - Article

AN - SCOPUS:105011341610

VL - 644

SP - 64

EP - 68

JO - NATURE

JF - NATURE

SN - 0028-0836

IS - 8075

ER -

By the same author(s)