Zugriffsnummer 54593
Dokumenttyp Zeitschriftenartikel Open Access Hybrid
Peer Review mit Peer Review
Sprache Englisch
Titel Coherent spectroscopy with a single antiproton spin
Autor(in); Institution
Latacz, Barbara M.; CERN, Geneva, SWITZERLAND; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN
Erlewein, Stefan R.; CERN, Geneva, SWITZERLAND; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY
Fleck, Markus; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN; University of Tokyo, Graduate School of Arts and Sciences, Meguro, JAPAN
Jäger, Julia I.; CERN, Geneva, SWITZERLAND; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY
Abbass, Fatma; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Arndt, Bela; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY; GSI Helmholtzzentrum für Schwerionenforschung, Darmstadt, GERMANY
Geissler, Philip; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN
Imamura, Tomoka; QUEST Institute for Experimental Quantum Metrology, PTB-Braunschweig; Leibniz Universität Hannover, Institut für Quantenoptik, Hannover, GERMANY
Leonhardt, Marcel; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Micke, Peter; CERN, Geneva, SWITZERLAND; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY
Mooser, Andreas; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY
Schweitzer, Daniel; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Voelksen, Fredrik; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Wursten, Elise; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN
Yildiz, Hüseyin; Johannes Gutenberg-Universität Mainz, Institut für Physik, Mainz, GERMANY
Blaum, Klaus; Max-Planck Institut für Kernphysik, Heidelberg, GERMANY
Devlin, Jack A.; CERN, Geneva, SWITZERLAND; Imperial College London, Center for Cold Matter, Blackett Laboratory, London, UK
Matsuda, Yasuyuki; University of Tokyo, Graduate School of Arts and Sciences, Meguro, JAPAN
Ospelkaus, Christian; QUEST Institute for Experimental Quantum Metrology, PTB-Braunschweig; Leibniz Universität Hannover, Institut für Quantenoptik, Hannover, GERMANY
Quint, Wolfgang; GSI Helmholtzzentrum für Schwerionenforschung, Darmstadt, GERMANY
Soter, Anna; ETH Zürich, Zürich, SWITZERLAND
Walz, Jochen; Johannes Gutenberg-Universität Mainz, Institut für Physik, Mainz, GERMANY; Johannes Gutenberg-Universität Mainz, Helmholtz-Institut Mainz, Mainz, GERMANY
Yamazaki, Yasunori; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN
Smorra, Christian; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Ulmer, Stefan; Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, JAPAN; Heinrich Heine Universität Düsseldorf, Institut für Experimentalphysik, Düsseldorf, GERMANY
Quelle/Jahr Nature: 644 (2025), 64 - 68
Availability [online only]
ISSN 1476-4687
DOI
Verlag Berlin: Springer Nature
Freie Schlagworte Coherent quantum transition ; Spectroscopy ; Quantum-sensing ; Metrology ; MASER spectroscopy
Zusammenfassung Coherent quantum transition spectroscopy is a powerful tool in quantum-sensing and metrology, quantum information processing, accurate magnetometry, high-precision tests of the fundamental laws of nature, and searches for physics beyond the Standard Model. In atomic physics measurements, it was applied with great success in proton and deuteron magnetic moment measurements, which culminated for example in MASER spectroscopy with sub-parts per trillion resolution, in record-constraints on the neutron electric dipole moment, and many other experiments at the forefront of physics. All these experiments were performed on macroscopic ensembles of particles, while the coherent spectroscopy of a “quasifree” single nuclear spin has never been reported before. In this manuscript, we demonstrate the first non-destructive coherent quantum transition spectroscopy of the spin of a single trapped antiproton, stored in a cryogenic Penning-trap system. We apply a multi-trap technique, detect the antiproton spin-state using the continuous Stern-Gerlach-effect, and transport the particle to the homogeneous and stabilized magnetic field of a precision trap (PT). Here, we induce the coherent dynamics, and analyze the result by a quantum-projection measurement in the analysis trap. In our measurements, we observe for the first time Rabi-oscillations of a single nuclear magnetic moment, and achieve in time series measurements spin inversion probabilities above 80% at spin coherence times of ≈ 50s. Scans of single-particle spin resonance spectra show inversions > 70%, at transition line-widths 16 times narrower than in our previous measurements, limited by cyclotron frequency measurement decoherence. This achievement marks a major step towards at least 10-fold improved measurements of the proton and antiproton magnetic moments, and thus, substantially improved tests of matter/antimatter symmetry in the baryon-sector.
Kostenfreier Zugang Open Access Hybrid
Rechteinformation CC BY-NC-ND 4.0 ; Creative Commons Attribution NonCommercial NoDerivatives 4.0 License
Themenbereich der Metrologie Zeit und Frequenz
Innovationscluster Quantentechnologie
Geschäftsfelder Grundlagen der Metrologie

Zitierung

Latacz, B. M., Erlewein, S. R., Fleck, M., Jäger, J. I., Abbass, F., Arndt, B., 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., Quint, W., Soter, A., Walz, J., Yamazaki, Y., Smorra, C., & Ulmer, S. (2025). Coherent spectroscopy with a single antiproton spin. Nature, 644, 64–68. https://doi.org/10.1038/s41586-025-09323-1

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