Y. Yamazaki

Orders of Magnitude Improved Cyclotron-Mode Cooling for Non-Destructive Spin Quantum Transition Spectroscopy with Single Trapped Antiprotons

B. M. Latacz [1,2], M. Fleck [1,3,2,4], J. I. Jaeger, G. Umbrazunas [1,5], B. P. Arndt [1,4,6], S. R. Erlewein [1,4], E. J. Wursten [1], J. A. Devlin [1,2], P. Micke [1,2,4], F. Abbass [7], D. Schweitzer [7], M. Wiesinger [4], C. Will [4], H. Yildiz [7], K. Blaum [4], Y. Matsuda [3], A. Mooser [4], C. Ospelkaus [8,9], A. Soter [5], W. Quint [6], J. Walz [7,10], Y. Yamazaki [1], C. Smorra [1,7], S. Ulmer [1,11]

Abstract

We demonstrate efficient sub-thermal cooling of the modified cyclotron mode of a single trapped antiproton and reach particle temperatures $T_+=E_+/k_\text{B}$ below $200\,$mK in preparation times shorter than $500\,$s. This corresponds to the fastest resistive single-particle cyclotron cooling to sub-thermal temperatures ever demonstrated. By cooling trapped particles to such low energies, we demonstrate the detection of antiproton spin transitions with an error-rate $<0.000025$, more than three orders of magnitude better than in previous best experiments. This method will have enormous impact on multi-Penning-trap experiments that measure magnetic moments with single nuclear spins for tests of matter/antimatter symmetry, high-precision mass-spectrometry, and measurements of electron $g$-factors bound to highly-charged ions that test quantum electrodynamics.

BASE-STEP: A transportable antiproton reservoir for fundamental interaction studies

C. Smorra [1,2], F. Abbass [1], M. Bohman [2,3], Y. Dutheil [4], A. Hobl [5], D. Popper [1], B. Arndt [2,3,6], B. B. Bauer [1,2], J. A. Devlin [2,4], S. Erlewein [2,3,4], M. Fleck [2,3,4], J. I. Jäger, B. M. Latacz [2,4], P. Micke [3,4], M. Schiffelholz [7,8], G. Umbrazunas [2,9], M. Wiesinger [3], C. Will [3], E. Wursten [2,4], H. Yildiz [1], K. Blaum [3], Y. Matsuda [10], A. Mooser [3], C. Ospelkaus [7,8], W. Quint [6], A. Soter [9], J. Walz [1,11], Y. Yamazaki [2], S. Ulmer [2,12]

Abstract

Currently, the only worldwide source of low-energy antiprotons is the AD/ELENA facility located at CERN. To date, all precision measurements on single antiprotons have been conducted at this facility and provide stringent tests of the fundamental interactions and their symmetries. However, the magnetic field fluctuations from the facility operation limit the precision of upcoming measurements. To overcome this limitation, we have designed the transportable antiproton trap system BASE-STEP to relocate antiprotons to laboratories with a calm magnetic environment. We anticipate that the transportable antiproton trap will facilitate enhanced tests of CPT invariance with antiprotons, and provide new experimental possibilities of using transported antiprotons and other accelerator-produced exotic ions. We present here the technical design of the transportable trap system. This includes the transportable superconducting magnet, the cryogenic inlay consisting of the trap stack and the detection systems, and the differential pumping section to suppress the residual gas flow into the cryogenic trap chamber.

Measurement of ultra-low heating rates of a single antiproton in a cryogenic Penning trap

M. J. Borchert [1,2], P. E. Blessing [1,3], J. A. Devlin [1], J. A. Harrington [1,4], T. Higuchi [1,5], J. Morgner [1,2], C. Smorra [1], E. Wursten [1,7], M. Bohman [1,4], M. Wiesinger [1,4], A. Mooser [1], K. Blaum [4], Y. Matsuda [5], C. Ospelkaus [2,8], W. Quint [3,9], J. Walz [6,10], Y. Yamazaki [11], S. Ulmer [1]

Abstract

We report on the first detailed study of motional heating in a cryogenic Penning trap using a single antiproton. Employing the continuous Stern-Gerlach effect we observe cyclotron quantum transition rates of 6(1) quanta/h and an electric field noise spectral density below $7.5(3.4)\times 10^{-20}\,\text{V}^{2}\text{m}^{-2} \text{Hz}^{-1}$, which corresponds to a scaled noise spectral density below $8.8(4.0)\times 10^{-12}\,\text{V}^{2}\text{m}^{-2}$, results which are more than two orders of magnitude smaller than those reported by other ion trap experiments.

Evaporative Cooling of Antiprotons to Cryogenic Temperatures

ALPHA Collaboration, G. B. Andresen, M. D. Ashkezari, M. Baquero-Ruiz [3], W. Bertsche [4,1], P. D. Bowe, E. Butler [4,5], C. L. Cesar, S. Chapman [3], M. Charlton [4], J. Fajans [3], T. Friesen [6,7,1,8,9,2], M. C. Fujiwara, D. R. Gill, J. S. Hangst, W. N. Hardy, R. S. Hayano, M. E. Hayden, A. Humphries [4], R. Hydomako [6], S. Jonsell [4,10], L. Kurchaninov [7], R. Lambo [5], N. Madsen [4], S. Menary [11], P. Nolan [12], K. Olchanski [7], A. Olin [7], A. Povilus [3], P. Pusa [12], F. Robicheaux [13], E. Sarid [14,9,15], D. M. Silveira, C. So [3,7,6,4], J. W. Storey, R. I. Thompson, D. P. van der Werf, D. Wilding [4,3], J. S. Wurtele, Y. Yamazaki [15]

Abstract

We report the application of evaporative cooling to clouds of trapped antiprotons, resulting in plasmas with measured temperature as low as 9~K. We have modeled the evaporation process for charged particles using appropriate rate equations. Good agreement between experiment and theory is observed, permitting prediction of cooling efficiency in future experiments. The technique opens up new possibilities for cooling of trapped ions and is of particular interest in antiproton physics, where a precise \emph{CPT} test on trapped antihydrogen is a long-standing goal.

Production of Slow Protonium in Vacuum

N. Zurlo [1], M. Amoretti [2], C. Amsler [3], G. Bonomi [4], C. Carraro [5], C. L. Cesar, M. Charlton [6], M. Doser [7], A. Fontana, R. Funakoshi, P. Genova, R. S. Hayano, L. V. Jorgensen, A. Kellerbauer [7], V. Lagomarsino [5], R. Landua [7], E. Lodi Rizzini [1], M. Macri', N. Madsen [6], G. Manuzio [5], D. Mitchard [6], P. Montagna, L. G. Posada, H. Pruys [3], C. Regenfus [3], A. Rotondi, G. Testera [2], D. P. Van der Werf, A. Variola [2], L. Venturelli [1], Y. Yamazaki

Abstract

We describe how protonium, the quasi-stable antiproton-proton bound system, has been synthesized following the interaction of antiprotons with the molecular ion H$_2^+$ in a nested Penning trap environment. From a careful analysis of the spatial distributions of antiproton annihilation events in the ATHENA experiment, evidence is presented for protonium production with sub-eV kinetic energies in states around $n$ = 70, with low angular momenta. This work provides a new 2-body system for study using laser spectroscopic techniques.

Evidence For The Production Of Slow Antiprotonic Hydrogen In Vacuum

N. Zurlo [1,2], M. Amoretti [3], C. Amsler [4], G. Bonomi [5,6], C. Carraro [3,7], C. L. Cesar [8], M. Charlton [9], M. Doser [10], A. Fontana [6,11], R. Funakoshi [12], P. Genova [6,11], R. S. Hayano [12,9], L. V. Jorgensen, A. Kellerbauer [10], V. Lagomarsino [3,7], R. Landua [10], E. Lodi Rizzini [1,2,3], M. Macrì, N. Madsen [9], G. Manuzio [3,7], D. Mitchard [9], P. Montagna [6,11,12], L. G. Posada, H. Pruys [4], C. Regenfus [4], A. Rotondi [6,11], G. Testera [3,9], D. P. Van der Werf, A. Variola [3], L. Venturelli [1,2], Y. Yamazaki [13]

Abstract

We present evidence showing how antiprotonic hydrogen, the quasistable antiproton-proton (pbar-p) bound system, has been synthesized following the interaction of antiprotons with the hydrogen molecular ion (H2+) in a nested Penning trap environment. From a careful analysis of the spatial distributions of antiproton annihilation events, evidence is presented for antiprotonic hydrogen production with sub-eV kinetic energies in states around n=70, and with low angular momenta. The slow antiprotonic hydrogen may be studied using laser spectroscopic techniques.