M. Tandecki

Offline trapping of $^{221}$Fr in a magneto-optical trap from implantation of an $^{225}$Ac ion beam

M. Tandecki, J. Zhang, S. Aubin, J. A. Behr, R. Collister, E. Gomez, G. Gwinner [1], H. Heggen [1], J. Lassen [1], L. A. Orozco [1], M. R. Pearson [1], S. Raeder [1], A. Teigelhöfer

Abstract

We demonstrate a new technique to prepare an offline source of francium for trapping in a magneto-optical trap. Implanting a radioactive beam of $^{225}$Ac, $t_{1/2} = 9.920(3)$ days, in a foil, allows use of the decay products, i.e.$^{221}$Fr, $t_{1/2} = 288.0(4)$ s. $^{221}$Fr is ejected from the foil by the $α$ decay of $^{225}$Ac. This technique is compatible with the online accumulation of a laser-cooled atomic francium sample for a series of planned parity non-conservation measurements at TRIUMF. We obtain a 34% release efficiency for $^{221}$Fr from the recoil source based on particle detector measurements. We find that laser cooling operation with the source is $8^{+10}_{-5}$ times less efficient than from a mass-separated ion beam of $^{221}$Fr in the current geometry. While the flux of this source is two to three orders of magnitude lower than typical francium beams from ISOL facilities, the source provides a longer-term supply of francium for offline studies.

Commissioning of the Francium Trapping Facility at TRIUMF

M. Tandecki [1], J. Zhang [2], R. Collister [3], S. Aubin [4], J. A. Behr [1], E. Gomez [5], G. Gwinner [3], L. A. Orozco [2], M. R. Pearson [1]

Abstract

We report on the successful commissioning of the Francium Trapping Facility at TRIUMF. Large laser-cooled samples of francium are produced from a francium ion beam delivered by the ISAC radioactive ion beam facility. The ion beam is neutralized on an yttrium foil, which is subsequently heated to transfer the atoms into the magneto-optical trapping region. We have successfully trapped $^{207}$Fr, $^{209}$Fr and $^{221}$Fr, with a maximum of $2.5 \times 10^5$ $^{209}$Fr atoms. The neutral cold atoms will be used in studies of the weak interaction through measurements of atomic parity non-conservation.

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.