A. Jaries

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.

Prominent bump in the two-neutron separation energies of neutron-rich lanthanum isotopes revealed by high-precision mass spectrometry

A. Jaries [1,2], M. Stryjczyk [1], A. Kankainen [1], T. Eronen [1], O. Beliuskina [1], T. Dickel [3,4], M. Flayol [5], Z. Ge [1,3], M. Hukkanen [1,5], M. Mougeot [1], S. Nikas [1], I. Pohjalainen [1], A. Raggio [1], M. Reponen [1], J. Ruotsalainen [1], V. Virtanen [1]

Abstract

We report on high-precision atomic mass measurements of $^{148\text{-}153}$La and $^{151}$Ce performed with the JYFLTRAP double Penning trap using the Phase-Imaging Ion-Cyclotron-Resonance technique. The masses of $^{152,153}$La were experimentally determined for the first time. We confirm the sharp kink in the two-neutron separation energies at the neutron number ${N=93}$ in the cerium (${Z=58}$) isotopic chain. Our precision mass measurements of the most exotic neutron-rich lanthanum (${Z=57}$) isotopes reveal a sudden increase in two-neutron separation energies from ${N=92}$ to ${N=93}$. Unlike in the cerium isotopic chain, the kink is not sharp but extends to ${N=94}$ forming a prominent bump. The gain in energy is about 0.4 MeV, making it one of the strongest changes in two-neutron separation energies over the whole chart of nuclides, away from nuclear shell closures. The results call for further studies to elucidate the structure of neutron-rich lanthanum isotopes.

Probing the N=104 midshell region for the r process via precision mass spectrometry of neutron-rich rare-earth isotopes with the JYFLTRAP double Penning trap

A. Jaries [1,2], S. Nikas [1], A. Kankainen [1], T. Eronen [1], O. Beliuskina [1], T. Dickel [3,4], M. Flayol [5], Z. Ge [1,3], M. Hukkanen [1,5], M. Mougeot [1], I. Pohjalainen [1], A. Raggio [1], M. Reponen [1], J. Ruotsalainen [1], M. Stryjczyk [1], V. Virtanen [1]

Abstract

We have performed high-precision mass measurements of neutron-rich rare-earth Tb, Dy and Ho isotopes using the Phase-Imaging Ion-Cyclotron-Resonance technique at the JYFLTRAP double Penning trap. We report on the first experimentally determined mass values for $^{169}$Tb, $^{170}$Dy and $^{171}$Dy, as well as the first high-precision mass measurements of $^{169}$Dy and $^{169\text{-}171}$Ho. For $^{170}$Ho, the two long-lived ground and isomeric states were resolved and their mass measured, yielding an isomer excitation energy of $E_\text{exc}=150.8(54)$~keV. In addition, we have performed independent crosschecks of previous Penning-trap values obtained for $^{167\text{,} 168}$Tb and $^{167\text{,} 168}$Dy. We have extended the systematics of two-neutron separation energies to the neutron midshell at $N=104$ in all of the studied isotopic chains. Our updated and new mass measurements provide better mass-related constraints for the neutron-capture reaction rates relevant to the astrophysical rapid neutron capture (r) process. The r-process abundances calculated with the new mass values seem to produce a steeper minimum at A=170 and differ by around 15-30\% from the abundances computed with the Atomic Mass Evaluation 2020 values.

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.

High-precision Penning-trap mass measurements of Cd and In isotopes at JYFLTRAP remove the fluctuations in the two-neutron separation energies

A. Jaries [1], M. Stryjczyk [1], A. Kankainen [1], L. Al Ayoubi [1,2], O. Beliuskina [1], P. Delahaye [3], T. Eronen [1], M. Flayol [4], Z. Ge [5,1], W. Gins [1], M. Hukkanen [1,4], D. Kahl [1], S. Kujanpää, D. Kumar [5,1], I. D. Moore, M. Mougeot [1], D. A. Nesterenko, S. Nikas [1], H. Penttilä, D. Pitman-Weymouth [7], I. Pohjalainen [1], A. Raggio [1], W. Rattanasakuldilok [1], A. de Roubin [4], J. Ruotsalainen [1], V. Virtanen [1]

Abstract

We report on the first direct mass measurements of the $^{118,119}$Cd and $^{117-119}$In isotopes performed at the Ion Guide Isotope Separator On-Line facility using the JYFLTRAP double Penning trap mass spectrometer. The masses of $^{117}$In and $^{118}$Cd isotopes are in agreement with the literature, while $^{118,119}$In and $^{119}$Cd differ from literature by 49, 13 and 85 keV (6.1, 1.9 and 2.1 standard deviations), respectively. The excitation energy of the $^{118}$In first isomeric state, $E_x = 40.3(25)$ keV, was determined for the first time. The updated mass values removed the fluctuations observed in the two-neutron separation energies and lead to a smoother linear decrease of both isotopic chains. The $\log(ft)$ value for the $^{118}$Cd decay is also found to increase from 3.93(6) to 4.089(8). The reported results indicate an absence of significant structural changes around $N=70$.

Precision mass measurement of $^{173}$Hf for nuclear structure of $^{173}$Lu and the $γ$ process

A. Jaries, M. Stryjczyk, A. Kankainen, T. Eronen, Z. Ge, M. Hukkanen, I. D. Moore, M. Mougeot, A. Raggio [1], W. Rattanasakuldilok [1], J. Ruotsalainen [1]

Abstract

We report on the precise mass measurement of the $^{173}$Hf isotope performed at the Ion Guide Isotope Separator On-Line facility using the JYFLTRAP double Penning trap mass spectrometer. The new mass-excess value, ${\mathrm{ME} = -55390.8(30)}$ keV, is in agreement with the literature while being nine times more precise. The newly determined $^{173}$Hf electron-capture $Q$ value, $Q_{EC} = 1490.2(34)$ keV, allows us to firmly reject the population of an excited state at 1578 keV in $^{173}$Lu and 11 transitions tentatively assigned to the decay of $^{173}$Hf. Our refined mass value of $^{173}$Hf reduces mass-related uncertainties in the reaction rate of $^{174}$Hf$(γ,n)^{173}$Hf. Thus, the rate for the main photodisintegration destruction channel of the $p$ nuclide $^{174}$Hf in the relevant temperature region for the $γ$ process is better constrained.

$β^-$ decay $Q$-value measurement of $^{136}$Cs and its implications to neutrino studies

Z. Ge [1,2], T. Eronen [2], A. de Roubin [3], M. Ramalho [2], J. Kostensalo [4], J. Kotila [2,5,6], J. Suhonen [2], D. A. Nesterenko [2], A. Kankainen [2], P. Ascher [3], O. Beliuskina [2], M. Flayol [3], M. Gerbaux [3], S. Grévy, M. Hukkanen [2,3], A. Husson [3], A. Jaries [2], A. Jokinen [2], I. D. Moore [2], P. Pirinen [2], J. Romero [2,7], M. Stryjczyk [2], V. Virtanen [2], A. Zadvornaya [2]

Abstract

The $β^-$ decay $Q$-value of $^{136}$Cs ($J^π= 5^+$, $t_{1/2} \approx 13$~days) was measured with the JYFLTRAP Penning trap setup at the Ion Guide Isotope Separator On-Line (IGISOL) facility of the University of Jyväskylä, Finland. The mono-isotopic samples required in the measurements were prepared with a new scheme utilised for the cleaning, based on the coupling of dipolar excitation with Ramsey's method of time-separated oscillatory fields and the phase-imaging ion-cyclotron-resonance (PI-ICR) technique. The $Q$ value is determined to be 2536.83(45) keV, which is $\sim$4 times more precise and 11.4(20) keV ($\sim$ 6$σ$) smaller than the adopted value in the most recent Atomic Mass Evaluation AME2020. The daughter, $^{136}$Ba, has a 4$^+$ state at 2544.481(24) keV and a $3^-$ state at 2532.653(23) keV, both of which can potentially be ultralow $Q$-value end-states for the $^{136}$Cs decay. With our new ground-to-ground state $Q$ value, the decay energies to these two states become -7.65(45) keV and 4.18(45) keV, respectively. The former is confirmed to be negative at the level of $\sim$ 17$σ$, which verifies that this transition is not a suitable candidate for neutrino mass determination. On the other hand, the slightly negative $Q$ value makes this transition an interesting candidate for the study of virtual $β$-$γ$ transitions. The decay to the 3$^{-}$ state is validated to have a positive low $Q$ value which makes it a viable candidate for neutrino mass determination. For this transition, we obtained a shell-model-based half-life estimate of $2.1_{-0.8}^{+1.6}\times10^{12}$ yr.