S. Rinta-Antila

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.

High-precision mass measurements of the ground and isomeric states in $^{124,125}$Ag

J. Ruotsalainen [1], D. A. Nesterenko [1], M. Stryjczyk [1], A. Kankainen [1], L. Al Ayoubi [1,2], O. Beliuskina [1], L. Canete [1], P. Chauveau [3], R. P. de Groote [1], P. Delahaye [4], T. Eronen [1], M. Flayol [5], Z. Ge [6,1], S. Geldhof [1], W. Gins [1], M. Hukkanen [1,5], A. Jaries [1], D. Kahl, D. Kumar [6], I. D. Moore [1], S. Nikas [1], H. Penttilä, D. Pitman-Weymouth [8], A. Raggio [1], S. Rinta-Antila [1], A. de Roubin [1], M. Vilen [1], V. Virtanen, M. Winter [1]

Abstract

The masses of the ground and isomeric states in $^{124,125}$Ag have been measured using the phase-imaging ion-cyclotron-resonance technique at the JYFLTRAP double Penning trap mass spectrometer. The ground states of $^{124}$Ag and $^{125}$Ag were found to be 30(250) keV and 250(430) keV less bound but 36 and 110 times more precise than in the Atomic Mass Evaluation 2020, respectively. The excitation energy of $^{124}$Ag$^{m}$, ${E_x = 188.2(25)}$ keV, was determined for the first time. The new precise mass values have been utilised to study the evolution of nuclear structure via two-neutron separation energies. The impact on the astrophysical rapid neutron capture process has been investigated via neutron-capture reaction rate calculations. The precision measurements indicate a more linear trend in two-neutron separation energies and reduce the mass-related uncertainties for the neutron-capture rate of $^{124}$Ag$(n,γ)^{125}$Ag by a factor of around 100. The new mass values also improve the mass of $^{123}$Pd, previously measured using $^{124}$Ag as a reference.

Isomeric states of fission fragments explored via Penning trap mass spectrometry at IGISOL

A. Jaries [1], M. Stryjczyk [1], A. Kankainen [1], L. Al Ayoubi [1,2], O. Beliuskina [1], L. Canete [1], R. P. de Groote, C. Delafosse [1], P. Delahaye [3], T. Eronen [1], M. Flayol [4], Z. Ge [5,1], S. Geldhof [1], W. Gins [1], M. Hukkanen [1,4], P. Imgram [6], D. Kahl, J. Kostensalo [8,1], S. Kujanpää, D. Kumar [5,1], I. D. Moore, M. Mougeot [1], D. A. Nesterenko, S. Nikas [1], D. Patel [9,1], H. Penttilä, D. Pitman-Weymouth [10], I. Pohjalainen [1], A. Raggio [1], M. Ramalho [1], M. Reponen [1], S. Rinta-Antila [1], A. de Roubin [1,4], J. Ruotsalainen [1,9], P. C. Srivastava, J. Suhonen [1,11], M. Vilen [1], V. Virtanen [1], A. Zadvornaya [1]

Abstract

The masses of $^{84}$Br, $^{105}$Mo, $^{115,119,121}$Pd, $^{122}$Ag, $^{127,129}$In, $^{132}$Sb and their respective isomeric states have been measured with the JYFLTRAP Penning trap mass spectrometer using the phase-imaging ion-cyclotron-resonance technique. The excitation energies of the isomeric states in $^{132}$Sb and $^{119}$Pd were experimentally determined for the first time, while for $^{84}$Br, $^{115}$Pd and $^{127,129}$In, the precision of the mass values was substantially improved. In $^{105}$Mo and $^{121}$Pd there were no signs of a long-lived isomeric state. The ground-state measurements of $^{119}$Pd and $^{122}$Ag indicated that both are significantly more bound than the literature values. For $^{122}$Ag, there was no indication of a proposed third long-lived state. The results for the $N=49$ nucleus $^{84}$Br and isomers close to doubly magic $^{132}$Sn have been compared to the shell-model and the microscopic quasiparticle-phonon model calculations.

Precision mass measurements in the zirconium region pin down the mass surface across the neutron midshell at $N=66$

M. Hukkanen, W. Ryssens, P. Ascher, M. Bender, T. Eronen, S. Grévy, A. Kankainen, M. Stryjczyk, O. Beliuskina, Z. Ge, S. Geldhof, M. Gerbaux, W. Gins, A. Husson, D. A. Nesterenko, A. Raggio, M. Reponen [1], S. Rinta-Antila [1], J. Romero [1], A. de Roubin [1], V. Virtanen [1], A. Zadvornaya [1]

Abstract

Precision mass measurements of $^{104}$Y, $^{106}$Zr, $^{104,104m,109}$Nb, and $^{111,112}$Mo have been performed with the JYFLTRAP double Penning trap mass spectrometer at the Ion Guide Isotope Separator On-Line facility. The order of the long-lived states in $^{104}$Nb was unambiguously established. The trend in two-neutron separation energies around the $N=66$ neutron midshell appeared to be steeper with respect to the Atomic Mass Evaluation 2020 extrapolations for the $_{39}$Y and $_{40}$Zr isotopic chains and less steep for the $_{41}$Nb chain, indicating a possible gap opening around $Z=40$. The experimental results were compared to the BSkG2 model calculations performed with and without vibrational and rotational corrections. All of them predict two low-lying minima for $^{106}$Zr. While the unaltered BSkG2 model fails to predict the trend in two-neutron separation energies, selecting the more deformed minima in calculations and removing the vibrational correction, the calculations are more in line with experimental data. The same is also true for the $2^+_1$ excitation energies and differences in charge radii in the Zr isotopes. The results stress the importance of improved treatment of collective corrections in large-scale models and further development of beyond-mean-field techniques.

Odd-odd neutron-rich rhodium isotopes studied with the double Penning trap JYFLTRAP

M. Hukkanen [1,2], W. Ryssens [3], P. Ascher [2], M. Bender, T. Eronen [1,2], S. Grévy, A. Kankainen [1], M. Stryjczyk [1], L. Al Ayoubi [1,5], S. Ayet [6], O. Beliuskina [1], C. Delafosse [1], W. Gins [1], M. Gerbaux [2], A. Husson [2], A. Jokinen [1], D. A. Nesterenko, I. Pohjalainen [1], M. Reponen [1], S. Rinta-Antila [1], A. de Roubin [1,7], A. P. Weaver

Abstract

Precision mass measurements of neutron-rich rhodium isotopes have been performed at the JYFLTRAP Penning trap mass spectrometer at the Ion Guide Isotope Separator On-Line (IGISOL) facility. We report results on ground- and isomeric-state masses in $^{110,112,114,116,118}$Rh and the very first mass measurement of $^{120}$Rh. The isomeric states were separated and measured for the first time using the phase-imaging ion-cyclotron-resonance (PI-ICR) technique. For $^{112}$Rh, we also report new half-lives for both the ground state and the isomer. The results are compared to theoretical predictions using the BSkG1 mass model and discussed in terms of triaxial deformation.

Novel Penning-trap techniques reveal isomeric states in $^{128}$In and $^{130}$In for the first time

D. A. Nesterenko, A. Kankainen, J. Kostensalo, C. R. Nobs, A. M. Bruce, O. Beliuskina, L. Canete, T. Eronen, E. R. Gamba, S. Geldhof, R. de Groote, A. Jokinen, J. Kurpeta, I. D. Moore, L. Morrison, Zs. Podolyák, I. Pohjalainen [1], S. Rinta-Antila [1], A. de Roubin [1], M. Rudigier [1], J. Suhonen [1], M. Vilén, V. Virtanen [1], J. Äystö

Abstract

Isomeric states in $^{128}$In and $^{130}$In have been studied with the JYFLTRAP Penning trap at the IGISOL facility. By employing novel ion manipulation techniques, different states were separated and masses of six beta-decaying states were measured. JYFLTRAP was also used to select the ions of interest for identification at a post-trap decay spectroscopy station. A new beta-decaying high-spin isomer feeding the $15^-$ isomer in $^{128}$Sn has been discovered in $^{128}$In at $1797.6(20)$ keV. Shell-model calculations employing a CD-Bonn potential re-normalized with the perturbative G-matrix approach suggest this new isomer to be a $16^+$ spin-trap isomer. In $^{130}$In, the lowest-lying $(10^-)$ isomeric state at $58.6(82)$ keV was resolved for the first time using the phase-imaging ion cyclotron resonance technique. The energy difference between the $10^-$ and $1^-$ states in $^{130}$In, stemming from parallel/antiparallel coupling of $(π0g_{9/2}^{-1})\otimes(ν0h_{11/2}^{-1})$, has been found to be around 200 keV lower than predicted by the shell model. Precise information on the energies of the excited states determined in this work is crucial for producing new improved effective interactions for the nuclear shell model description of nuclei near $^{132}$Sn.

High-precision $Q$-value measurement confirms the potential of $^{135}$Cs for antineutrino-mass detection

A. de Roubin [1], J. Kostensalo [1], T. Eronen [1], L. Canete [1], R. P. de Groote [1], A. Jokinen [1], A. Kankainen [1], D. A. Nesterenko [1], I. D. Moore [1], S. Rinta-Antila [1], J. Suhonen [1], M. Vilén

Abstract

The ground-state-to-ground-state $β$-decay $Q$-value of $^{135}\textrm{Cs}(7/2^+)\to\,^{135}\textrm{Ba}(3/2^+)$ was directly measured for the first time utilizing the Phase-Imaging Ion-Cyclotron Resonance (PI-ICR) technique at the JYFLTRAP Penning-trap setup. It is the first direct determination of this $Q$-value and its value of 268.66(30)\,keV is a factor of three more precise than the currently adopted $Q$-value in the Atomic Mass Evaluation 2016. Moreover, the $Q$-value deduced from the $β$-decay endpoint energy has been found to deviate from our result by approximately 6 standard deviations. The measurement confirms that the first-forbidden unique $β^-$-decay transition $^{135}\textrm{Cs}(7/2^+)\to\,^{135}\textrm{Ba}(11/2^-)$ is a candidate for antineutrino-mass measurements with an ultra-low $Q$-value of $0.44(31)$ keV. This $Q$-value is almost an order of magnitude smaller than in any presently running or planned direct (anti)neutrino-mass experiment.

Exploring the mass surface near the rare-earth abundance peak via precision mass measurements at JYFLTRAP

M. Vilen [1,2], J. M. Kelly, A. Kankainen [1], M. Brodeur [2], A. Aprahamian [2], L. Canete [1], R. de Groote [1], A. de Roubin [1], T. Eronen [1], A. Jokinen [1,3], I. D. Moore, M. R. Mumpower, D. A. Nesterenko, J. O'Brien, A. Pardo Perdomo [2,1], H. Penttilä, M. Reponen [1], S. Rinta-Antila [1], R. Surman [2]

Abstract

The JYFLTRAP double Penning trap at the Ion Guide Isotope Separator On-Line (IGISOL) facility has been used to measure the atomic masses of 13 neutron-rich rare-earth isotopes. Eight of the nuclides, $^{161}$Pm, $^{163}$Sm, $^{164,165}$Eu, $^{167}$Gd, and $^{165,167,168}$Tb, were measured for the first time. The systematics of the mass surface has been studied via one- and two-neutron separation energies as well as neutron pairing-gap and shell-gap energies. The proton-neutron pairing strength has also been investigated. The impact of the new mass values on the astrophysical rapid neutron capture process has been studied. The calculated abundance distribution results in a better agreement with the solar abundance pattern near the top of the rare-earth abundance peak at around $A\approx165$.

Total absorption $γ$-ray spectroscopy of the $β$-delayed neutron emitters $^{137}$I and $^{95}$Rb

V. Guadilla, J. L. Tain, A. Algora, J. Agramunt, D. Jordan, M. Monserrate, A. Montaner-Pizá, E. Nácher, S. E. A. Orrigo [1], B. Rubio [1], E. Valencia [1], M. Estienne [2], M. Fallot [2], L. Le Meur [2], J. A. Briz [2], A. Cucoanes [2], A. Porta [2], T. Shiba [2], A. -A. Zakari-Issoufou [2], A. A. Sonzogni [3], J. Äystö, T. Eronen, D. Gorelov, J. Hakala, A. Jokinen, A. Kankainen, V. S. Kolhinen, J. Koponen, I. D. Moore, H. Penttilä, I. Pohjalainen [4], J. Reinikainen [4], M. Reponen [4], S. Rinta-Antila [4], K. Rytkönen, V. Sonnenschein [4], A. Voss [4], L. M. Fraile [5], V. Vedia [5], E. Ganioğlu, W. Gelletly [6], M. Lebois [7], J. N. Wilson [7], T. Martinez [8]

Abstract

The decays of the $β$-delayed neutron emitters $^{137}$I and $^{95}$Rb have been studied with the total absorption $γ$-ray spectroscopy technique. The purity of the beams provided by the JYFLTRAP Penning trap at the ion guide isotope separator on-line facility in Jyväskylä allowed us to carry out a campaign of isotopically pure measurements with the decay total absorption $γ$-ray spectrometer, a segmented detector composed of eighteen NaI(Tl) modules. The contamination coming from the interaction of neutrons with the spectrometer has been carefully studied, and we have tested the use of time differences between prompt $γ$-rays and delayed neutron interactions to eliminate this source of contamination. Due to the sensitivity of our spectrometer, we have found a significant amount of $β$-intensity to states above the neutron separation energy that de-excite by $γ$-rays, comparable to the neutron emission probability. The competition between $γ$ de-excitation and neutron emission has been compared with Hauser-Feshbach calculations, and it can be understood as a nuclear structure effect. In addition, we have studied the impact of the $β$-intensity distributions determined in this work on reactor decay heat and reactor antineutrino spectrum summation calculations. The robustness of our results is demonstrated by a thorough study of uncertainties, and with the reproduction of the spectra of the individual modules and the module-multiplicity gated spectra. This work represents the state-of-the-art of our analysis methodology for segmented total absorption spectrometers.

Total absorption $γ$-ray spectroscopy of niobium isomers

V. Guadilla [1], A. Algora [1,2], J. L. Tain [1], J. Agramunt [1,3], J. Äystö, J. A. Briz [4], A. Cucoanes [4], T. Eronen [3], M. Estienne [4], M. Fallot [4], L. M. Fraile [5,6], E. Ganioğlu, W. Gelletly [7], D. Gorelov [3], J. Hakala [3], A. Jokinen [3], D. Jordan [1], A. Kankainen [3], V. Kolhinen [3], J. Koponen [3], M. Lebois [8], L. Le Meur [4], T. Martinez [9], M. Monserrate [1], A. Montaner-Pizá, I. Moore [3,10], E. Nácher, S. E. A. Orrigo [1,3], H. Penttilä, I. Pohjalainen [3], A. Porta [4], J. Reinikainen [3], M. Reponen [3], S. Rinta-Antila [3], B. Rubio [1,3], K. Rytkönen, P. Sarriguren [10], T. Shiba [4], V. Sonnenschein [3], A. A. Sonzogni [11], E. Valencia [1], V. Vedia [5], A. Voss [3], J. N. Wilson [8], A. -A. Zakari-Issoufou [4]

Abstract

The $β$ intensity distributions of the decays of $^{100\text{gs},100\text{m}}$Nb and $^{102\text{gs},102\text{m}}$Nb have been determined using the Total Absorption $γ$-Ray Spectroscopy technique. The JYFLTRAP double Penning trap system was employed to disentangle the isomeric states involved, lying very close in energy, in a campaign of challenging measurements performed with the Decay Total Absorption $γ$-ray Spectrometer at the Ion Guide Isotope Separator On-Line facility in Jyväskylä. The low-spin isomeric state of each niobium case was populated through the decay of the zirconium parent, that was treated as a contaminant. We have applied a method to extract this contamination, and additionally we have obtained $β$ intensity distributions for these zirconium decays. The $β$-strength distributions evaluated with these results were compared with calculations in quasiparticle random-phase approximation, suggesting a prolate configuration for the ground states of $^{100,102}$Zr. The footprint of the Pandemonium effect was found when comparing our results for the analyses of the niobium isotopes with previous decay data. The $β$-intensities of the decay of $^{102\text{m}}$Nb were obtained for the first time. A careful evaluation of the uncertainties was carried out, and the consistency of our results was validated taking advantage of the segmentation of our spectrometer. The final results were used as input in reactor summation calculations. A large impact on antineutrino spectrum calculations was already reported and here we detail the significant impact on decay heat calculations.

A new off-line ion source facility at IGISOL

M. Vilén, L. Canete, B. Cheal, A. Giatzoglou, R. de Groote, A. de Roubin, T. Eronen, S. Geldhof, A. Jokinen, A. Kankainen, I. D. Moore, D. A. Nesterenko, H. Penttilä, I. Pohjalainen [1], M. Reponen [1], S. Rinta-Antila [1]

Abstract

An off-line ion source station has been commissioned at the IGISOL (Ion Guide Isotope Separator On-Line) facility. It offers the infrastructure needed to produce stable ion beams from three off-line ion sources in parallel with the radioactive ion beams produced from the IGISOL target chamber. This has resulted in improved feasibility for new experiments by offering reference ions for Penning-trap mass measurements, laser spectroscopy and atom trap experiments.

Isomeric fission yield ratios for odd-mass Cd and In isotopes using the Phase-Imaging Ion-Cyclotron-Resonance technique

V. Rakopoulos [1], M. Lantz [1], S. Pomp [1], A. Solders [1], A. Al-Adili [1], L. Canete [2], T. Eronen [2], A. Jokinen [2], A. Kankainen [2], A. Mattera [1], I. D. Moore [2], D. A. Nesterenko [2], M. Reponen [2], S. Rinta-Antila [2], A. de Roubin [2,1], M. Vilén, M. Österlund, H. Penttilä

Abstract

Isomeric yield ratios for the odd-$A$ isotopes of $^{119-127}$Cd and $^{119-127}$In from 25-MeV proton-induced fission on natural uranium have been measured at the JYFLTRAP double Penning trap, by employing the Phase-Imaging Ion-Cyclotron-Resonance technique. With the significantly improved mass resolution of this novel method isomeric states separated by 140 keV from the ground state, and with half-lives of the order of 500 ms, could be resolved. This opens the door for obtaining new information on low-lying isomers, of importance for nuclear structure, fission and astrophysics. In the present work the experimental isomeric yield ratios are used for the estimation of the root-mean-square angular momentum ($J_\mathrm{rms}$) of the primary fragments. The results show a dependency on the number of unpaired protons and neutrons, where the odd-$Z$ In isotopes carry larger angular momenta. The deduced values of $J_\mathrm{rms}$ display a linear relationship when compared with the electric quadrupole moments of the fission products.

Mass of astrophysically relevant $^{31}$Cl and the breakdown of the isobaric multiplet mass equation

A. Kankainen [1], L. Canete [1], T. Eronen [1], J. Hakala [1], A. Jokinen [1], J. Koponen [1], I. D. Moore, D. Nesterenko [1], J. Reinikainen [1], S. Rinta-Antila [1], A. Voss [1,2], J. Äystö

Abstract

The mass of $^{31}$Cl has been measured with the JYFLTRAP double Penning trap mass spectrometer at the Ion-Guide Isotope Separator On-Line (IGISOL) facility. The determined mass-excess value, -7034.7(34) keV, is 15 times more precise than in the Atomic Mass Evaluation 2012. The quadratic form of the isobaric multiplet mass equation for the T=3/2 quartet at A=31 fails ($χ^2_n$=11.6) and a non-zero cubic term, d=-3.5(11) keV, is obtained when the new mass value is adopted. $^{31}$Cl has been found to be less proton-bound with a proton separation energy of $S_p$=265(4) keV. Energies for the excited states in $^{31}$Cl and the photodisintegration rate on $^{31}$Cl have been determined with significantly improved precision using the new $S_p$ value. The improved photodisintegration rate helps to constrain astrophysical conditions where $^{30}$S can act as a waiting point in the rapid proton capture process in type I x-ray bursts.

Mass Measurements and Implications for the Energy of the High-Spin Isomer in 94Ag

A. Kankainen [1], V. -V. Elomaa [1], L. Batist [2], S. Eliseev [2,3], T. Eronen [1], U. Hager [1], J. Hakala [1], A. Jokinen [1,2,3], I. D. Moore, Yu. N. Novikov, H. Penttilä, A. Popov [2], S. Rahaman [1], S. Rinta-Antila [1], J. Rissanen [1], A. Saastamoinen [1,2], D. M. Seliverstov, T. Sonoda [1], G. Vorobjev [2,3], C. Weber [1], J. Äystö

Abstract

Nuclides in the vicinity of 94Ag have been studied with the Penning trap mass spectrometer JYFLTRAP at the Ion-Guide Separator On-Line. The masses of the two-proton-decay daughter 92Rh and the beta-decay daughter 94Pd of the high-spin isomer in 94Ag have been measured, and the masses of 93Pd and 94Ag have been deduced. When combined with the data from the one-proton or two-proton-decay experiments, the results lead to contradictory mass excess values for the high-spin isomer in 94Ag, -46370(170) or -44970(100) keV, corresponding to excitation energies of 6960(400) or 8360(370) keV, respectively.

Precise atomic masses of neutron-rich Br and Rb nuclei close to the r-process path

S. Rahaman, U. Hager, V. -V. Elomaa, T. Eronen, J. Hakala, A. Jokinen, A. Kankainen, P. Karvonen, I. D. Moore, H. Penttila, S. Rinta-Antila [1], J. Rissanen [1], A. Saastamoinen [1], T. Sonoda [1], J. Aysto

Abstract

The Penning trap mass spectrometer JYFLTRAP, coupled to the Ion-Guide Isotope Separator On-Line (IGISOL) facility at Jyvaskyla, was employed to measure the atomic masses of neutron rich 85 to 92Br and 94 to 97Rb isotopes with a typical accuracy less than 10 keV. Discrepancies with the older data are discussed. Comparison to different mass models is presented. Details of nuclear structure, shell and subshell closures are investigated by studying the two-neutron separation energy and the shell gap energy.