A. Voss

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.

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.