J. R. Crespo López-Urrutia

Stringent test of QED with hydrogenlike tin

J. Morgner [1], B. Tu [1], C. M. König, T. Sailer [1], F. Heiße, H. Bekker, B. Sikora [1], C. Lyu [1], V. A. Yerokhin [1], Z. Harman [1], J. R. Crespo López-Urrutia, C. H. Keitel [1], S. Sturm [1], K. Blaum [1]

Abstract

Inner-shell electrons naturally sense the electric field close to the nucleus, which can reach extreme values beyond $10^{15}\,\text{V}/\text{cm}$ for the innermost electrons. Especially in few-electron highly charged ions, the interaction with the electromagnetic fields can be accurately calculated within quantum electrodynamics (QED), rendering these ions good candidates to test the validity of QED in strong fields. Consequently, their Lamb shifts were intensively studied in the last decades. Another approach is the measurement of $g$ factors in highly charged ions. However, so far, either experimental accuracy or small field strength in low-$Z$ ions limited the stringency of these QED tests. Here, we report on our high-precision, high-field test of QED in hydrogenlike $^{118}$Sn$^{49+}$. The highly charged ions were produced with the Heidelberg-EBIT (electron beam ion trap) and injected into the ALPHATRAP Penning-trap setup, where the bound-electron $g$ factor was measured with a precision of 0.5 parts-per-billion. For comparison, we present state-of-the-art theory calculations, which together test the underlying QED to about $0.012\,\%$, yielding a stringent test in the strong-field regime. With this measurement, we challenge the best tests via the Lamb shift and, with anticipated advances in the $g$-factor theory, surpass them by more than an order of magnitude.

An ultralow-noise superconducting radio-frequency ion trap for frequency metrology with highly charged ions

J. Stark [1,2], C. Warnecke [1,2], S. Bogen [1], S. Chen [1,3], E. A. Dijck [1,2], S. Kühn, M. K. Rosner [1,2], A. Graf [1], J. Nauta [1,2], J. -H. Oelmann [1,2,4], L. Schmöger, M. Schwarz [1,4], D. Liebert [1,4], L. J. Spieß, S. A. King [4], T. Leopold [4], P. Micke [1,4], P. O. Schmidt [4,5], T. Pfeifer [1], J. R. Crespo López-Urrutia

Abstract

We present a novel ultrastable superconducting radio-frequency (RF) ion trap realized as a combination of an RF cavity and a linear Paul trap. Its RF quadrupole mode at 34.52 MHz reaches a quality factor of $Q\approx2.3\times 10^5$ at a temperature of 4.1 K and is used to radially confine ions in an ultralow-noise pseudopotential. This concept is expected to strongly suppress motional heating rates and related frequency shifts which limit the ultimate accuracy achieved in advanced ion traps for frequency metrology. Running with its low-vibration cryogenic cooling system, electron beam ion trap and deceleration beamline supplying highly charged ions (HCI), the superconducting trap offers ideal conditions for optical frequency metrology with ionic species. We report its proof-of-principle operation as a quadrupole mass filter with HCI, and trapping of Doppler-cooled ${}^9\text{Be}^+$ Coulomb crystals.

The Heidelberg compact electron beam ion traps

P. Micke [1,2], S. Kühn, L. Buchauer [1], J. R. Harries [3,1], T. M. Bücking, K. Blaum [1], A. Cieluch [1], A. Egl [1], D. Hollain [1], S. Kraemer [1], T. Pfeifer [1], P. O. Schmidt [2,4,1], R. X. Schüssler, Ch. Schweiger [1,5,6,7], T. Stöhlker, S. Sturm [1], R. N. Wolf [1], S. Bernitt [1,7], J. R. Crespo López-Urrutia

Abstract

Electron beam ion traps (EBIT) are ideal tools for both production and study of highly charged ions (HCI). In order to reduce their construction, maintenance, and operation costs we have developed a novel, compact, room-temperature design, the Heidelberg Compact EBIT (HC-EBIT). Four already commissioned devices operate at the strongest fields (up to 0.86 T) reported for such EBITs using permanent magnets, run electron beam currents up to 80 mA and energies up to 10 keV. They demonstrate HCI production, trapping, and extraction of pulsed Ar$^{16+}$ bunches and continuous 100 pA ion beams of highly charged Xe up to charge state 29+, already with a 4 mA, 2 keV electron beam. Moreover, HC-EBITs offer large solid-angle ports and thus high photon count rates, e. g., in x-ray spectroscopy of dielectronic recombination in HCIs up to Fe$^{24+}$, achieving an electron-energy resolving power of $E/ΔE > 1500$ at 5 keV. Besides traditional on-axis electron guns, we have also implemented a novel off-axis gun for laser, synchrotron, and free-electron laser applications, offering clear optical access along the trap axis. We report on its first operation at a synchrotron radiation facility demonstrating resonant photoexcitation of highly charged oxygen.

Detection of the $5p-4f$ orbital crossing and its optical clock transition in Pr$^{9+}$

H. Bekker [1], A. Borschevsky [2], Z. Harman [1], C. H. Keitel [1], T. Pfeifer [1], P. O. Schmidt [3,4,1], J. R. Crespo López-Urrutia, J. C. Berengut [1,5]

Abstract

Recent theoretical works have proposed atomic clocks based on narrow optical transitions in highly charged ions. The most interesting candidates for searches of new physics are those which occur at rare orbital crossings where the shell structure of the periodic table is reordered. There are only three such crossings expected to be accessible in highly charged ions, and hitherto none have been observed as both experiment and theory have proven difficult. In this work we observe an orbital crossing in highly charged ions for the first time, in a system chosen to be tractable from both sides: Pr$^{9+}$. We present electron beam ion trap measurements of its spectra, including the inter-configuration lines that reveal the sought-after crossing. The proposed nHz-wide clock line, found to be at 452.334(1) nm, proceeds through hyperfine admixture of its upper state with an E2-decaying level. With state-of-the-art calculations we show that it has a very high sensitivity to new physics and extremely low sensitivity to external perturbations, making it a unique candidate for proposed precision studies.

Closed-cycle, low-vibration 4 K cryostat for ion traps and other applications

P. Micke [1,2], J. Stark [1,3], S. A. King [2], T. Leopold [2], T. Pfeifer [1,2], L. Schmöger, M. Schwarz [1,2], L. J. Spieß, P. O. Schmidt [2,4,1], J. R. Crespo López-Urrutia

Abstract

In-vacuo cryogenic environments are ideal for applications requiring both low temperatures and extremely low particle densities. This enables reaching long storage and coherence times for example in ion traps, essential requirements for experiments with highly charged ions, quantum computation, and optical clocks. We have developed a novel cryostat continuously refrigerated with a pulse-tube cryocooler and providing the lowest vibration level reported for such a closed-cycle system with 1 W cooling power for a <5 K experiment. A decoupling system suppresses vibrations from the cryocooler by three orders of magnitude down to a level of 10 nm peak amplitudes in the horizontal plane. Heat loads of about 40 W (at 45 K) and 1 W (at 4 K) are transferred from an experimental chamber, mounted on an optical table, to the cryocooler through a vacuum-insulated massive 120 kg inertial copper pendulum. The 1.4 m long pendulum allows installation of the cryocooler in a separate, acoustically isolated machine room. In the laser laboratory, we measured the residual vibrations using an interferometric setup. The positioning of the 4 K elements is reproduced to better than a few micrometer after a full thermal cycle to room temperature. Extreme high vacuum on the $10^{-15}$ mbar level is achieved. In collaboration with the Max-Planck-Intitut für Kernphysik (MPIK), such a setup is now in operation at the Physikalisch-Technische Bundesanstalt (PTB) for a next-generation optical clock experiment using highly charged ions.

Highly charged ions: optical clocks and applications in fundamental physics

M. G. Kozlov [1,2], M. S. Safronova [3,4,5], J. R. Crespo López-Urrutia, P. O. Schmidt [7]

Abstract

Recent developments in frequency metrology and optical clocks have been based on electronic transitions in atoms and singly charged ions as references. These systems have enabled relative frequency uncertainties at a level of a few parts in $10^{-18}$. This accomplishment not only allows for extremely accurate time and frequency measurements, but also to probe our understanding of fundamental physics, such as variation of fundamental constants, violation of the local Lorentz invariance, and forces beyond the Standard Model of Physics. In addition, novel clocks are driving the development of sophisticated technical applications. Crucial for applications of clocks in fundamental physics are a high sensitivity to effects beyond the Standard Model and Einstein's Theory of Relativity and a small frequency uncertainty of the clock. Highly charged ions offer both. They have been proposed as highly accurate clocks, since they possess optical transitions which can be extremely narrow and less sensitive to external perturbations compared to current atomic clock species. The selection of highly charged ions in different charge states offers narrow transitions that are among the most sensitive ones for a change in the fine-structure constant and the electron-to-proton mass ratio, as well as other new physics effects. Recent advances in trapping and sympathetic cooling of highly charged ions will in the future enable high accuracy optical spectroscopy. Progress in calculating the properties of selected highly charged ions has allowed the evaluation of systematic shifts and the prediction of the sensitivity to the "new physics" effects. This article reviews the current status of theory and experiment in the field.

Optical spectroscopy of complex open 4$d$-shell ions Sn$^{7+}$-Sn$^{10+}$

F. Torretti [1,2], A. Windberger [1,3], A. Ryabtsev [4,5], S. Dobrodey [3], H. Bekker [3], W. Ubachs [1,2], R. Hoekstra [1,6], E. V. Kahl [7], J. C. Berengut [7,3], J. R. Crespo López-Urrutia, O. O. Versolato [1]

Abstract

We analyze the complex level structure of ions with many-valence-electron open [Kr] 4$d^\textrm{m}$ sub-shells ($\textrm{m}$=7-4) with ab initio calculations based on configuration-interaction many-body perturbation theory (CI+MBPT). Charge-state-resolved optical and extreme ultraviolet (EUV) spectra of Sn$^{7+}$-Sn$^{10+}$ ions were obtained using an electron beam ion trap. Semi-empirical spectral fits carried out with the orthogonal parameters technique and Cowan code calculations lead to 90 identifications of magnetic-dipole transitions and the determination of 79 energy ground-configuration levels, questioning some earlier EUV-line assignments. Our results, the most complete data set available to date for these ground configurations, confirm the ab initio predictive power of CI+MBPT calculations for the these complex electronic systems.

Analysis of the fine structure of Sn$^{11+...14+}$ ions by optical spectroscopy in an electron beam ion trap

A. Windberger [1,2], F. Torretti [1,3], A. Borschevsky [4], A. Ryabtsev [5,6], S. Dobrodey [2], H. Bekker [2], E. Eliav [7], U. Kaldor [7], W. Ubachs [1,3], R. Hoekstra [1,8,2], J. R. Crespo López-Urrutia, O. O. Versolato [1]

Abstract

We experimentally re-evaluate the fine structure of Sn$^{11+...14+}$ ions. These ions are essential in bright extreme-ultraviolet (EUV) plasma-light sources for next-generation nanolithography, but their complex electronic structure is an open challenge for both theory and experiment. We combine optical spectroscopy of magnetic dipole $M1$ transitions, in a wavelength range covering 260\,nm to 780\,nm, with charge-state selective ionization in an electron beam ion trap. Our measurements confirm the predictive power of \emph{ab initio} calculations based on Fock space coupled cluster theory. We validate our line identification using semi-empirical Cowan calculations with adjustable wavefunction parameters. Available Ritz combinations further strengthen our analysis. Comparison with previous work suggests that line identifications in the EUV need to be revisited.

Low-Background In-Trap Decay Spectroscopy with TITAN at TRIUMF

K. G. Leach, A. Lennarz [1,3], A. Grossheim [1], R. Klawitter [1,4], T. Brunner [1,5], A. Chaudhuri [1], U. Chowdhury [1,6,4,7], J. R. Crespo López-Urrutia, A. T. Gallant, A. A. Kwiatkowski, T. D. Macdonald, B. E. Schultz, S. Seeraji [2], C. Andreoiu [2], D. Frekers [3], J. Dilling [1]

Abstract

An in-trap decay spectroscopy setup has been developed and constructed for use with the TITAN facility at TRIUMF. The goal of this device is to observe weak electron-capture (EC) branching ratios for the odd-odd intermediate nuclei in the $ββ$ decay process. This apparatus consists of an up-to 6 Tesla, open-access spectroscopy ion-trap, surrounded radially by up to 7 planar Si(Li) detectors which are separated from the trap by thin Be windows. This configuration provides a significant increase in sensitivity for the detection of low-energy photons by providing backing-free ion storage and eliminating charged-particle-induced backgrounds. An intense electron beam is also employed to increase the charge-states of the trapped ions, thus providing storage times on the order of minutes, allowing for decay-spectroscopy measurements. The technique of multiple ion-bunch stacking was also recently demonstrated, which further extends the measurement possibilities of this apparatus. The current status of the facility and initial results from a $^{116}$In measurement are presented.

The TITAN in-trap decay spectroscopy facility at TRIUMF

K. G. Leach, A. Grossheim, A. Lennarz, T. Brunner, J. R. Crespo López-Urrutia, A. T. Gallant, M. Good, R. Klawitter, A. A. Kwiatkowski, T. Ma, T. D. Macdonald, S. Seeraji, M. C. Simon, C. Andreoiu, J. Dilling [1], D. Frekers [1]

Abstract

This article presents an upgraded in-trap decay spectroscopy apparatus which has been developed and constructed for use with TRIUMF's Ion Trap for Atomic and Nuclear science (TITAN). This device consists of an open-access electron-beam ion-trap (EBIT), which is surrounded radially by seven low-energy planar Si(Li) detectors. The environment of the EBIT allows for the detection of low-energy photons by providing backing-free storage of the radioactive ions, while guiding charged decay particles away from the trap centre via the strong (up to 6 T) magnetic field. In addition to excellent ion confinement and storage, the EBIT also provides a venue for performing decay spectroscopy on highly-charged radioactive ions. Recent technical advancements have been able to provide a significant increase in sensitivity for low-energy photon detection, towards the goal of measuring weak electron-capture branching ratios of the intermediate nuclei in the two-neutrino double beta ($2νββ$) decay process. The design, development, and commissioning of this apparatus are presented together with the main physics objectives. The future of the device and experimental technique are discussed.

Major role of multielectronic K-L inter-shell resonant recombination processes in Li- to O-like ions of Ar, Fe, and Kr

C. Beilmann [1], Z. Harman [1,2], P. H. Mokler [1], S. Bernitt [1], C. H. Keitel [1], J. Ullrich [1], J. R. Crespo López-Urrutia

Abstract

Dielectronic and higher-order resonant electron recombination processes including a K-shell excitation were systematically measured at high resolution in electron beam ion traps. Storing highly charged Ar, Fe, and Kr ions, the dependence on atomic number Z of the contribution of these processes to the total recombination cross section was studied and compared with theoretical calculations. Large higher-order resonant recombination contributions are found, especially for systems with 10<Z<36. In some cases, they even surpass the strength of the dielectronic channel, which was hitherto presumed to be always the dominant one. These findings have consequences for the modeling of high-temperatur plasmas. Features attributed to inter-shell quadruelectronic recombination were also observed. The experimental data obtained for the He-like to O-like isoelectronic sequences compare well with the results of advanced relativistic distorted-wave calculations employing multiconfiguration Dirac-Fock bound state wave functions that include threefold and fourfold excitations.

Decay rate measurement of the first vibrationally excited state of MgH$^+$ in a cryogenic Paul trap

O. O. Versolato [1], M. Schwarz [1], A. K. Hansen [2], A. D. Gingell [2], A. Windberger [1,3], Å\udc81. KÅ‚osowski, J. Ullrich [1,4], F. Jensen [5,1], J. R. Crespo López-Urrutia, M. Drewsen [2]

Abstract

We present a method to measure the decay rate of the first excited vibrational state of simple polar molecular ions being part of a Coulomb crystal in a cryogenic linear Paul trap. Specifically, we have monitored the decay of the $|ν$=$1,J$=$1 \rangle_X$ towards the $|ν$=$0,J$=$0 \rangle_X$ level in MgH$^+$ by saturated laser excitation of the $|ν$=$0,J$=$2 \rangle_X$-$|ν$=$1,J$=$1 \rangle_X$ transition followed by state selective resonance enhanced two-photon dissociation out of the $|ν$=$0,J$=$2 \rangle_X$ level. The technique enables the determination of decay rates, and thus absorption strengths, with an accuracy at the few percent level.

PENTATRAP: A novel cryogenic multi-Penning trap experiment for high-precision mass measurements on highly charged ions

J. Repp [1,2,3], Ch. Böhm, J. R. Crespo López-Urrutia, A. Dörr, S. Eliseev [1], S. George [1], M. Goncharov [1,2,3,4], Yu. N. Novikov, C. Roux [1,2], S. Sturm [1,5], S. Ulmer [1,2,5], K. Blaum [1,2]

Abstract

The novel five-Penning trap mass spectrometer PENTATRAP is developed at the Max-Planck-Institut für Kernphysik (MPIK), Heidelberg. Ions of interest are long-lived highly charged nuclides up to bare uranium. PENTATRAP aims for an accuracy of a few parts in 10^12 for mass ratios of mass doublets. A physics program for PENTATRAP includes Q-values measurements of β-transitions relevant for neutrino physics, stringent tests of quantum electrodynamics in the regime of extreme electric fields, and a test of special relativity. Main features of PENTATRAP are an access to a source of highly charged ions, a multi-trap configuration, simultaneous measurements of frequencies, a continuous precise monitoring of magnetic field fluctuations, a fast exchange between different ions, and a highly sensitive cryogenic non-destructive detection system. This paper gives a motivation for the new mass spectrometer PENTATRAP, presents its experimental setup, and describes the present status.

First Use of High Charge States for Mass Measurements of Short-lived Nuclides in a Penning Trap

S. Ettenauer [1,2], M. C. Simon [1], A. T. Gallant [1,2], T. Brunner [1,3], U. Chowdhury [1,4], V. V. Simon [1,5,6], M. Brodeur [1,2,7], A. Chaudhuri [1], E. Mané, C. Andreoiu [8], G. Audi [9,5], J. R. Crespo López-Urrutia, P. Delheij [1], G. Gwinner [4], A. Lapierre [1,7], D. Lunney [1,9], M. R. Pearson [1], R. Ringle [7], J. Ullrich [5], J. Dilling [1,2]

Abstract

Penning trap mass measurements of short-lived nuclides have been performed for the first time with highly-charged ions (HCI), using the TITAN facility at TRIUMF. Compared to singly-charged ions, this provides an improvement in experimental precision that scales with the charge state q. Neutron-deficient Rb-isotopes have been charge bred in an electron beam ion trap to q = 8 - 12+ prior to injection into the Penning trap. In combination with the Ramsey excitation scheme, this unique setup creating low energy, highly-charged ions at a radioactive beam facility opens the door to unrivalled precision with gains of 1-2 orders of magnitude. The method is particularly suited for short-lived nuclides such as the superallowed β emitter 74Rb (T1/2 = 65 ms). The determination of its atomic mass and an improved QEC-value are presented.