N. Severijns

Performance of the MORA Apparatus for Testing Time-Reversal Invariance in Nuclear Beta Decay

N. Goyal [1], A. Singh [1], S. Daumas-Tschopp [2], L. M. Motilla Martinez [1,3], G. Ban [2], V. Bosquet [2], J. F. Cam [2], P. Chauveau [1], S. Chinthakayala [1,3,4], G. Fremont, R. P. De Groote, F. de Oliveira Santos [1], T. Eronen [3], A. Falkowski [5,2], X. Flechard, Z. Ge [3,6,1], M. Gonzalez-Alonso, H. Guerin, L. Hayen [2], A. Jaries [3], M. Jbayli [1], A. Jokinen [3], A. Kankainen [3], B. Kootte [3], R. Kronholm [3], N. Lecesne [1], Y. Merrer [2], V. Morel [1], M. Mougeot [3], G. Neyens [4], J. Perronnel [2], M. Reponen [3], A. Raggio [3], S. Rinta-Antila [3], A. Rodriguez-Sanchez [6], N. Severijns [4], J. C. Thomas [1], C. Vandamme [2], S. Vanlangendonk [4], V. Virtanen [3,2], E. Lienard, I. D. Moore [3], P. Delahaye [1]

Abstract

The MORA experimental setup is designed to measure the triple-correlation D parameter in nuclear beta decay. The D coefficient is sensitive to possible violations of time-reversal invariance. The experimental configuration consists of a transparent Paul trap surrounded by a detection setup with alternating beta and recoil-ion detectors. The octagonal symmetry of the detection setup optimizes the sensitivity of positron-recoil-ion coincidence rates to the D correlation, while reducing systematic effects. MORA utilizes an innovative in-trap laser polarization technique. The design and performance of the ion trap, associated beamline elements, lasers and beta and recoil-ion detectors, are presented. Recent progress towards the polarization proof-of-principle is described.

The MORA project

P. Delahaye [1,2], E. Liénard, I. Moore [3], M. Benali [2], M. L. Bissell [4], L. Canete [3], T. Eronen [3], A. Falkowski [5,2], X. Fléchard, M. Gonzalez-Alonso [6], W. Gins [7], R. P. De Groote [3], A. Jokinen [3], A. Kankainen [3], M. Kowalska [6], N. Lecesne [1], R. Leroy [1], Y. Merrer [2], G. Neyens [6,7], F. De Oliveira Santos [1], G. Quemener [2], A. De Roubin [3], B. -M. Retailleau [1], T. Roger [1], N. Severijns [7], J. C. Thomas [1], K. Turzo [1], P. Ujic [1]

Abstract

The MORA (Matter's Origin from the RadioActivity of trapped and oriented ions) project aims at measuring with unprecedented precision the D correlation in the nuclear beta decay of trapped and oriented ions. The D correlation offers the possibility to search for new CP-violating interactions, complementary to searches done at the LHC and with Electric Dipole Moments. Technically, MORA uses an innovative in-trap orientation method which combines the high trapping efficiency of a transparent Paul trap with laser orientation techniques. The trapping, detection, and laser setups are under development, for first tests at the Accelerator laboratory, JYFL, in the coming years.

Electron shakeoff following the \b{eta}+ decay of 19Ne+ and 35Ar+ trapped ions

X. Fabian [1], X. Fléchard, B. Pons [2,1], E. Liénard, G. Ban [1], M. Breitenfeldt [3], C. Couratin [1], P. Delahaye [4], D. Durand [1], P. Finlay [3], B. Guillon [1], Y. Lemière, F. Mauger [1,5], A. Méry, O. Naviliat-Cuncic [1,6], T. Porobic [3,1], G. Quéméner, N. Severijns [3,4], J. -C. Thomas

Abstract

The electron shakeoff of 19F and 35Cl atoms resulting from the \b{eta}+ decay of 19Ne+ and 35Ar+ ions has been investigated using a Paul trap coupled to a time of flight recoil-ion spectrometer. The charge-state distributions of the recoiling daughter nuclei were compared to theoretical calculations based on the sudden approximation and accounting for subsequent Auger processes. The excellent agreement obtained for 35Cl is not reproduced in 19F. The shortcoming is attributed to the inaccuracy of the independent particle model employed to calculate the primary shakeoff probabilities in systems with rather low atomic numbers. This calls for more elaborate calculations, including explicitly the electron-electron correlations.

Electron shakeoff following the ?+ decay of trapped 35Ar+ ions

C. Couratin [1], X. Fabian [1], B. Fabre [2], B. Pons [2,1], X. Fléchard, E. Liénard, G. Ban [1], M. Breitenfeldt [3], P. Delahaye [4], D. Durand [1,5], A. Méry, O. Naviliat-Cuncic [1,6], T. Porobic [3,1,7], G. Quéméner, D. Rodriguez, N. Severijns [3,4], J. C. Thomas, S. Van Gorp [8]

Abstract

The electron shakeoff of $^{35}$Cl atoms resulting from the $β$$^+$ decay of $^{35}$Ar$^+$ ions has been investigated using a Paul trap coupled to a recoil-ion spectrometer. The charge-state distribution of the recoiling daughter nuclei is compared to theoretical calculations accounting for shakeoff and Auger processes. The calculations are in excellent agreement with the experimental results and enable to identify the ionization reaction routes leading to the formation of all charge states.

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.

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.