A. Herlert

First detection and energy measurement of recoil ions following beta decay in a Penning trap with the WITCH experiment

M. Beck [1], S. Coeck [2], V. Yu. Kozlov, M. Breitenfeld [2], P. Delahaye [3], P. Friedag [1], M. Herbane [2], A. Herlert [3,2], I. S. Kraev, J. Mader [1], M. Tandecki [2], S. Van Gorp [2], F. Wauters [2], Ch. Weinheimer [1], F. Wenander [3], N. Severijns [2]

Abstract

The WITCH experiment (Weak Interaction Trap for CHarged particles) will search for exotic interactions by investigating the beta-neutrino angular correlation via the measurement of the recoil energy spectrum after beta decay. As a first step the recoil ions from the beta-minus decay of 124In stored in a Penning trap have been detected. The evidence for the detection of recoil ions is shown and the properties of the ion cloud that forms the radioactive source for the experiment in the Penning trap are presented.

Electric and magnetic field optimization procedure for Penning trap mass spectrometers

D. Beck, K. Blaum, G. Bollen, P. Delahaye, S. George, C. Guenaut, F. Herfurth, A. Herlert, D. Lunney, L. Schweikhard [1], C. Yazidjian [1]

Abstract

Significant systematic errors in high-precision Penning trap mass spectrometry can result from electric and magnetic field imperfections. An experimental procedure to minimize these uncertainties is presented for the on-line Penning trap mass spectrometer ISOLTRAP, located at ISOLDE/CERN. The deviations from the ideal magnetic and electric fields are probed by measuring the cyclotron frequency and the reduced cyclotron frequency, respectively, of stored ions as a function of the time between the ejection of ions from the preparation trap and their capture in the precision trap, which influences the energy of their axial motion. The correction parameters are adjusted to minimize the frequency shifts.

Time-separated oscillatory fields for high-precision mass measurements on short-lived Al and Ca nuclides

S. George [1,2], G. Audi [3], B. Blank [4], K. Blaum [1,2,5], M. Breitenfeldt [6], U. Hager [7], F. Herfurth [1], A. Herlert [8], A. Kellerbauer [5], H. -J. Kluge [1,9], M. Kretzschmar [2], D. Lunney [3], R. Savreux [1], S. Schwarz [10], L. Schweikhard [6], C. Yazidjian [1]

Abstract

High-precision Penning trap mass measurements on the stable nuclide 27Al as well as on the short-lived radionuclides 26Al and 38,39Ca have been performed by use of radiofrequency excitation with time-separated oscillatory fields, i.e. Ramsey's method, as recently introduced for the excitation of the ion motion in a Penning trap, was applied. A comparison with the conventional method of a single continuous excitation demonstrates its advantage of up to ten times shorter measurements. The new mass values of 26,27Al clarify conflicting data in this specific mass region. In addition, the resulting mass values of the superallowed beta-emitter 38Ca as well as of the groundstate of the beta-emitter 26Al m confirm previous measurements and corresponding theoretical corrections of the ft-values.

The Ramsey method in high-precision mass spectrometry with Penning traps: Experimental results

S. George [1,2], K. Blaum [1,2], F. Herfurth [1], A. Herlert [3], M. Kretzschmar [2], S. Nagy [2], S. Schwarz [4], L. Schweikhard [5], C. Yazidjian [1]

Abstract

The highest precision in direct mass measurements is obtained with Penning trap mass spectrometry. Most experiments use the interconversion of the magnetron and cyclotron motional modes of the stored ion due to excitation by external radiofrequency-quadrupole fields. In this work a new excitation scheme, Ramsey's method of time-separated oscillatory fields, has been successfully tested. It has been shown to reduce significantly the uncertainty in the determination of the cyclotron frequency and thus of the ion mass of interest. The theoretical description of the ion motion excited with Ramsey's method in a Penning trap and subsequently the calculation of the resonance line shapes for different excitation times, pulse structures, and detunings of the quadrupole field has been carried out in a quantum mechanical framework and is discussed in detail in the preceding article in this journal by M. Kretzschmar. Here, the new excitation technique has been applied with the ISOLTRAP mass spectrometer at ISOLDE/CERN for mass measurements on stable as well as short-lived nuclides. The experimental resonances are in agreement with the theoretical predictions and a precision gain close to a factor of four was achieved compared to the use of the conventional excitation technique.

Separated Oscillatory Fields for High-Precision Penning Trap Mass Spectrometry

S. George [1,2], S. Baruah [3], B. Blank [4], K. Blaum [1,2], M. Breitenfeldt [3], U. Hager [5], F. Herfurth [1], A. Herlert [6], A. Kellerbauer [7], H. J. Kluge [1,8], M. Kretzschmar [2], D. Lunney [9], R. Savreux [1], S. Schwarz [10], L. Schweikhard [3], C. Yazidjian [1]

Abstract

Ramsey's method of separated oscillatory fields is applied to the excitation of the cyclotron motion of short-lived ions in a Penning trap to improve the precision of their measured mass. The theoretical description of the extracted ion-cyclotron-resonance line shape is derived out and its correctness demonstrated experimentally by measuring the mass of the short-lived $^{38}$Ca nuclide with an uncertainty of $1.6\cdot 10^{-8}$ using the ISOLTRAP Penning trap mass spectrometer at CERN. The mass value of the superallowed beta-emitter $^{38}$Ca is an important contribution for testing the conserved-vector-current hypothesis of the electroweak interaction. It is shown that the Ramsey method applied to mass measurements yields a statistical uncertainty similar to that obtained by the conventional technique ten times faster.

The WITCH Experiment: towards weak interactions studies. Status and prospects

V. Yu. Kozlov, M. Beck, S. Coeck, M. Herbane, I. S. Kraev, N. Severijns, F. Wauters, P. Delahaye, A. Herlert, F. Wenander, D. Zakoucky

Abstract

Primary goal of the WITCH experiment is to test the Standard Model for a possible ad-mixture of a scalar or tensor type interaction in beta-decay. This information will be inferred from the shape of the recoil energy spectrum. The experimental set-up was completed and is under intensive commissioning at ISOLDE (CERN). It combines a Penning trap to store the ions and a retardation spectrometer to probe the recoil ion energy. A brief overview of the WITCH set-up and the results of commissioning tests performed until now are presented. Finally, perspectives of the physics program are reviewed.