M Vogel

Production of highly charged ions inside a cryogenic Penning trap by electron-impact ionisation

Kanika [1,2], A Krishnan [1,3], J W Klimes [1,2,4], B Reich [1,2], K K Anjum [1,5], P Baus [3], G Birkl [3], W Quint [1,2], M Vogel [1]

Abstract

We have built and operated a cryogenic Penning trap arrangement that allows for the efficient production, selection, and long-term storage of highly charged atomic ions. In close similarity to an electron-beam ion trap (EBIT) it works by electron-impact ionisation of atoms inside a dedicated confinement region. The electrons are produced by field emission at liquid-helium temperature and are subsequently accelerated to the keV energy range. The electron beam is reflected through the trap multiple times to increase the ionisation efficiency. We show a characterisation of the system and measurements with argon and tungsten ions up to Ar$^{16+}$ and W$^{27+}$, respectively.

Resistive cooling of highly charged ions in a Penning trap to a fluid-like state

M. S. Ebrahimi, Z. Guo [1], M. Vogel [1], M. Wiesel [2], G. Birkl [3], W. Quint [4]

Abstract

We have performed a detailed experimental study of resistive cooling of large ensembles of highly charged ions such as Ar$^{13+}$ in a cryogenic Penning trap. Different from the measurements reported in [M. Vogel et al., Phys. Rev. A, 043412 (2014)], we observe purely exponential cooling behavior when conditions are chosen to allow collisional thermalization of the ions. We provide evidence that in this situation, resistive cooling time constants and final temperatures are independent of the initial ion energy, and that the cooling time constant of a thermalized ion ensemble is identical to the single-ion cooling time constant. For sufficiently high ion number densities, our measurements show discontinuities in the spectra of motional resonances which indicate a transition of the ion ensemble to a fluid-like state when cooled to temperatures below approximately 14 K. With the final ion temperature presently being 7.5 K, ions of the highest charge states are expected to form ion crystals by mere resistive cooling, in particular not requiring the use of laser cooling.

Rapid crystallization of externally produced ions in a Penning trap

T. Murboeck, S. Schmidt [2,3], G. Birkl [1,2,4], W. Noertershaeuser, R. C. Thompson, M. Vogel [5]

Abstract

We have studied the cooling dynamics, formation process and geometric structure of mesoscopic crystals of externally produced magnesium ions in a Penning trap. We present a cooling model and measurements for a combination of buffer gas cooling and laser cooling which has been found to reduce the ion kinetic energy by eight orders of magnitude from several hundreds of eV to micro-eV and below within seconds. With ion numbers of the order of 1000 to 100000, such cooling leads to the formation of ion Coulomb crystals which display a characteristic shell structure in agreement with theory of non-neutral plasmas. We show the production and characterization of two-species ion crystals as a means of sympathetic cooling of ions lacking a suitable laser-cooling transition.

Resistive and sympathetic cooling of highly-charged-ion clouds in a Penning trap

M. Vogel [1], H. Häffner, K. Hermanspahn [2], S. Stahl [3], J. Steinmann [4], W. Quint [5]

Abstract

We present measurements of resistive and sympathetic cooling of ion clouds confined in a Penning trap. For resistive cooling of a cloud consisting of one ion species, we observe a significant deviation from exponential cooling behavior which is explained by an energy-transfer model. The observed sympathetic cooling of simultaneously confined ion species shows a quadratic dependence on the ion charge state and is hence in agreement with expectations from the physics of dilute non-neutral plasmas.

Experimental access to higher-order Zeeman effects by precision spectroscopy of highly charged ions in a Penning trap

D. von Lindenfels [1], M. Wiesel [2], D. A. Glazov [3], A. V. Volotka [3], M. M. Sokolov [4], V. M. Shabaev [4], G. Plunien [5], W. Quint [6], G. Birkl [7], A. Martin [7], M. Vogel [7]

Abstract

We present an experimental concept and setup for laser-microwave double-resonance spectroscopy of highly charged ions in a Penning trap. Such spectroscopy allows a highly precise measurement of the Zeeman splittings of fine- and hyperfine-structure levels due the magnetic field of the trap. We have performed detailed calculations of the Zeeman effect in the framework of quantum electrodynamics of bound states as present in such highly charged ions. We find that apart from the linear Zeeman effect, second- and third-order Zeeman effects also contribute to the splittings on a level of 10^-4 and 10^-8, respectively, and hence are accessible to a determination within the achievable spectroscopic resolution of the ARTEMIS experiment currently in preparation.

Laser cooling of externally produced Mg ions in a Penning trap for sympathetic cooling of highly charged ions

Z. Andelkovic [1], R. Cazan [1], W. Nörtershäuser, S. Bharadia [2], D. M. Segal, R. C. Thompson, R. Jöhren, J. Vollbrecht [3], V. Hannen [3], M. Vogel [4]

Abstract

We have performed laser cooling of Mg ions confined in a Penning trap. The externally produced ions were captured in flight, stored and laser cooled. Laser-induced fluorescence was observed perpendicular to the cooling laser axis. Optical detection down to the single ion level together with electronic detection of the ion oscillations inside the Penning trap have been used to acquire information on the ion storage time, ion number and ion temperature. Evidence for formation of ion crystals has been observed. These investigations are an important prerequisite for sympathetic cooling of simultaneously stored highly-charged ions and precision laser spectroscopy of forbidden transitions in these.

HITRAP: A facility at GSI for highly charged ions

H. -J. Kluge, T. Beier, K. Blaum, L. Dahl, S. Eliseev, F. Herfurth, B. Hofmann, O. Kester, S. Koszudowski, C. Kozhuharov, G. Maero, W. Noertershaeuser, J. Pfister, W. Quint, U. Ratzinger, A. Schempp, R. Schuch [1,2], T. Stoehlker, R. C. Thompson, M. Vogel [1], G. Vorobjev [1], D. F. A. Winters, G. Werth [1]

Abstract

An overview and status report of the new trapping facility for highly charged ions at the Gesellschaft fuer Schwerionenforschung is presented. The construction of this facility started in 2005 and is expected to be completed in 2008. Once operational, highly charged ions will be loaded from the experimental storage ring ESR into the HITRAP facility, where they are decelerated and cooled. The kinetic energy of the initially fast ions is reduced by more than fourteen orders of magnitude and their thermal energy is cooled to cryogenic temperatures. The cold ions are then delivered to a broad range of atomic physics experiments.

Laser spectroscopy of hyperfine structure in highly-charged ions: a test of QED at high fields

D. F. A. Winters, M. Vogel [1], D. M. Segal, R. C. Thompson, W. Noertershaeuser

Abstract

An overview is presented of laser spectroscopy experiments with cold, trapped, highly-charged ions, which will be performed at the HITRAP facility at GSI in Darmstadt (Germany). These high-resolution measurements of ground state hyperfine splittings will be three orders of magnitude more precise than previous measurements. Moreover, from a comparison of measurements of the hyperfine splittings in hydrogen- and lithium-like ions of the same isotope, QED effects at high electromagnetic fields can be determined within a few percent. Several candidate ions suited for these laser spectroscopy studies are presented.

Proposed precision laser spectrometer for trapped, highly charged ions

M. Vogel [1], D. F. A. Winters, D. M. Segal, R. C. Thompson

Abstract

We propose a novel type of precision laser spectrometer for trapped, highly charged ions nearly at rest. It consists of a cylindrical open-endcap Penning trap in which an externally produced bunch of highly charged ions can be confined and investigated by means of laser spectroscopy. The combination of confinement, cooling and compression of a dense ion cloud will allow the ground state hyperfine splitting in highly charged ions to be measured with an accuracy three orders of magnitude better than in any previous experiment. A systematic study of different charge states and different isotopes of the same element allows for highly sensitive tests of bound-state QED and for a precision determination of nuclear properties. Apart from stable isotopes, also radioactive species with half-lives longer than about one hour can be investigated.