G. Cerchiari

Spectrometry of Captured Highly Charged Ions Produced Following Antiproton Annihilations

F. P. Gustafsson [1], M. Volponi [1], J. Zielinski [2], A. Asare [3], I. Hwang [4], S. Alfaro Campos [5,6], M. Auzins [3], D. Bhanushali [5], A. Bhartia [5,7], M. Berghold [8], R. S. Brusa [9,10], K. Calik [2], A. Camper [11], R. Caravita [9,10], F. Castelli [12,13], G. Cerchiari [5,6], S. Chandran [14], A. Chehaimi [9,10], S. Choudapurkar [5,15], R. CiuryÅ‚o, P. Conte [12,16], G. Consolati [12,16], M. Doser [1], R. Ferguson [9,10], M. Germann [1], A. Giszczak [2,1], L. T. Glöggler, Å\udc81. Graczykowski, M. Grosbart [1], F. Guatieri [9,10], N. Gusakova [1,11], S. Haider [1], S. Huck [1,17], C. Hugenschmidt [8], M. Jakubowska [2], M. A. Janik [2], G. Kasprowicz [18], K. Kempny [2], G. Khatri [1], A. Kisiel [2,15], Å\udc81. KÅ‚osowski, G. Kornakov [2], V. Krumins [1,3], L. Lappo [2], A. Linek [15,10,9], S. Mariazzi, P. Moskal [19,20,8], M. Münster, P. Pandey [19,20], L. Penasa [9,10,15], M. PiwiÅ„ski, F. Prelz [12], T. Rauschendorfer [1,16], B. S. Rawat [14,21], B. Rienäcker, V. Rodin [14], H. Sandaker [11], S. Sharma [19,20,22,3], T. SowiÅ„ski, E. TÄ“berga, M. Tockner [5], C. P. Welsch [14,21], M. Zawada [15], N. Zurlo [23,24]

Abstract

We report a proof-of-principle study demonstrating the first capture and time-of-flight spectrometry of highly charged ions (HCIs) produced following antiproton annihilations in a Penning-Malmberg trap. A multi-step nested-trap technique was developed using the \aegis\ experiment to identify annihilation-linked captured ions. The trapping and spectrometry of helium and argon ions demonstrates the approach. This work establishes a foundation for the in-trap synthesis of radioactive HCIs and the study of cold nuclear annihilation fragments, with the long-term goal of enabling a sensitive tool for probing the outer nuclear periphery.

Synthesis of cold and trappable fully stripped HCI's via antiproton-induced nuclear fragmentation in traps

G. Kornakov [1], G. Cerchiari [2,1], J. Zieliński, L. Lappo [1], G. Sadowski [3], M. Doser [3]

Abstract

The study of radioisotopes as well as of highly charged ions is a very active and dynamic field. In both cases, the most sensitive probes involve species trapped in Penning or Paul traps after a lengthy series of production and separation steps that limit the types and lifetimes of species that can be investigated. We propose a novel production scheme that forms fully (or almost fully) stripped radionuclei in form of highly charged ions (HCI's) directly in the trapping environment. The method extends the range of species, among them radioisotopes such as $^{21}$F, $^{100}$Sn or $^{229}$Th, that can be readily produced and investigated and is complementary to existing techniques.

Motion analysis of a trapped ion chain by single photon self-interference

G. Cerchiari [1], G. Araneda [1,2], L. Podhora [3], L. SlodiÄ\udc8dka, Y. Colombe [1], R. Blatt [1,4]

Abstract

We present an optical scheme to detect the oscillations of a two-ion string confined in a linear Paul trap. The motion is detected by analyzing the intensity correlations in the fluorescence light emitted by one or two ions in the string. We present measurements performed under continuous Doppler cooling and under pulsed illumination. We foresee several direct applications of this detection method, including motional analysis of multi-ion species or coupled mechanical oscillators, and sensing of mechanical correlations.

Position measurement of a dipolar scatterer via self-homodyne detection

G. Cerchiari [1], L. Dania [1], D. S. Bykov [1], R. Blatt [1,2], T. Northup [1]

Abstract

We describe a technique to measure the position of a dipolar scatterer based on self-homodyne detection of the scattered light. The method can theoretically reach the Heisenberg limit, at which information gained about the position is constrained only by the back-action of the scattered light. The technique has applications in the fields of levitated optomechanics and trapped ions and is generally applicable to the position determination of confined light scatterers.

Measuring ion oscillations at the quantum level with fluorescence light

G. Cerchiari [1], G. Araneda [1,2], L. Podhora [3], L. SlodiÄ\udc8dka, Y. Colombe [1], R. Blatt [1,4]

Abstract

We demonstrate an optical method for detecting the mechanical oscillations of an atom with single-phonon sensitivity. The measurement signal results from the interference between the light scattered by a single trapped atomic ion and that of its mirror image. The motion of the atom modulates the interference path length and hence the photon detection rate. We detect the oscillations of the atom in the Doppler cooling limit and reconstruct average trajectories in phase space. We demonstrate single-phonon sensitivity near the ground state of motion after EIT cooling. These results could be applied for motion detection of other light scatterers of fundamental interest, such as trapped nanoparticles.