R. Orford

Precise Mass Measurement of the $^{149}$La-$^{149}$Ce-$^{149}$Pr isobaric chain

B. Liu [1,2], M. Brodeur [1,2], J. A. Clark, D. Ray [3,2], G. Savard [2,4,3,1], A. A. Valverde, D. P. Burdette, A. M. Houff, A. Mitra [1,5,2], G. E. Morgan, R. Orford [6,1], W. S. Porter, C. Quick [1], F. Rivero [1,3], K. S. Sharma, L. Varriano [4,2]

Abstract

Penning trap mass measurements of $^{149}$La, $^{149}$Ce, and $^{149}$Pr were performed with the Canadian Penning Trap (CPT) at the CARIBU facility of Argonne National Laboratory using the phase-imaging ion-cyclotron-resonance technique. The resulting mass excess of $^{149}$La differs by 221 keV from a recent JYFLTRAP measurement, resulting in a significant change in the profile of the two-neutron separation energy for that isotopic chain. The mass excesses of $^{149}$Ce and $^{149}$Pr are determined with an eight-fold improvement in precision compared to previous time-of-flight ion-cyclotron-resonance measurements; the $^{149}$Ce value is consistent with AME2020, while the $^{149}$Pr mass excess is lower by 17.5 keV. The mass excesses of $^{149}$La and $^{149}$Pr reported in this work have been confirmed recently by a measurement with a multi-reflection time-of-flight mass spectrometer coupled to a $β$-time of flight detector at RIKEN, providing further validation of the present results.

Astrophysical significance of the isomer $^{119m}$Ag demonstrated through direct mass measurement

F. Rivero [1], M. Brodeur [1,2], J. A. Clark, B. Liu [1,2,3,4], G. W. Misch, M. R. Mumpower, W. S. Porter, D. Ray [5,2], G. Savard [2,6,3,5], T. M. Sprouse, A. A. Valverde, D. P. Burdette, A. Cannon [7,8,1], A. T. Gallant, A. M. Houff, K. Kolos [8,2], F. G. Kondev, R. Orford [9], C. Quick [1,5], K. S. Sharma, L. Varriano [10]

Abstract

The abundance of elements heavier than iron produced via the astrophysical rapid-neutron capture process depends sensitively on the atomic mass of the involved nuclei as well as the behavior of a few special types of nuclear isomers called astromers. High-precision mass measurements of $^{119}$Cd, $^{119}$Ag and their respective isomeric states have been performed with the Phase Imaging-Ion Cyclotron Resonance (PI-ICR) method with a precision of $δm/m \approx 10^{-8}$ using the Canadian Penning Trap (CPT). The ground state mass excess, as well as the excitation energy, agrees with recent Penning Trap measurements from JYFLTRAP. Network calculations using these new measurements revealed that, contrary to previous expectations, $^{119m}$Ag behaves as an astromer which significantly affects the population of $^{119}$Ag.

Mass measurements of neutron-rich nuclides using the Canadian Penning Trap to inform predictions in the $r$-process rare-earth peak region

D. Ray [1,2], N. Vassh [3], B. Liu [4,2,1], A. A. Valverde, M. Brodeur [4,2,1,5,6], J. A. Clark, G. C. McLaughlin, M. R. Mumpower, R. Orford [7,4], W. S. Porter, G. Savard [2,8], K. S. Sharma [1], R. Surman [4], F. Buchinger [9,2], D. P. Burdette, N. Callahan [2,10], A. T. Gallant, D. E. M. Hoff, K. Kolos [10,2], F. G. Kondev, G. E. Morgan [2,11], F. Rivero [4], D. Santiago-Gonzalez [2,10], N. D. Scielzo, L. Varriano [2,8,12], C. M. Weber, G. E. Wilson [11,2,13], X. L. Yan

Abstract

Studies aiming to determine the astrophysical origins of nuclei produced by the rapid neutron capture process ($r$ process) rely on nuclear properties as inputs for simulations. The solar abundances can be used as a benchmark for such calculations, with the $r$-process rare-earth peak (REP) around mass number ($A$) 164 being of special interest due to its presently unknown origin. With the advancement of rare isotope beam production over the last decade and improvement in experimental sensitivities, many of these REP nuclides have become accessible for measurement. Masses are one of the most critical inputs as they impact multiple nuclear properties, namely the neutron-separation energies, neutron capture rates, $β$-decay rates, and $β$-delayed neutron emission probabilities. In this work, we report masses of 20 neutron-rich nuclides (along the Ba, La, Ce, Pr, Nd, Pm, Gd, Dy and Ho isotopic chains) produced at the CAlifornium Rare Isotope Breeder Upgrade (CARIBU) facility at Argonne National Laboratory. The masses were measured with the Canadian Penning trap (CPT) mass spectrometer using the Phase-Imaging Ion-Cyclotron-Resonance (PI-ICR) technique. We then use these new masses along with previously published CPT masses to inform predictions for a Markov Chain Monte Carlo (MCMC) procedure aiming to identify the astrophysical conditions consistent with both solar data and mass measurements. We show that the MCMC responds to this updated mass information, producing refined results for both mass predictions and REP abundances.

High-precision mass measurement of $^{103}$Sn restores smoothness of the mass surface

C. M. Ireland [1,2], F. M. Maier [1], G. Bollen [1,2], S. E. Campbell [1,2], X. Chen [1], H. Erington [1,2], N. D. Gamage [1,3,4], M. J. Gutiérrez, C. Izzo [1], E. Leistenschneider [5], E. M. Lykiardopoulou [5], R. Orford [5], W. S. Porter [6], D. Puentes [1,2], M. Redshaw [7], R. Ringle [1,2], S. Rogers [1], S. Schwarz [1], L. Stackable [1], C. S. Sumithrarachchi [1], A. A. Valverde [8], A. C. C. Villari [1], I. T. Yandow [1,2]

Abstract

As a step towards the ultimate goal of a high-precision mass measurement of doubly-magic $^{100}$Sn, the mass of $^{103}$Sn was measured at the Low Energy Beam and Ion Trap (LEBIT) located at the Facility for Rare Isotope Beams (FRIB). Utilizing the time-of-flight ion cyclotron resonance (ToF-ICR) technique, a mass uncertainty of 3.7~keV was achieved, an improvement by more than an order of magnitude compared to a recent measurement performed in 2023 at the Cooler Storage Ring (CSRe) in Lanzhou. Although the LEBIT and CSRe mass measurements of $^{103}$Sn are in agreement, they diverge from the experimental mass value reported in the 2016 version of the Atomic Mass Evaluation (AME2016), which was derived from the measured $Q_{β^+}$ value and the mass of $^{103}$In. In AME2020, this indirectly measured $^{103}$Sn mass was classified as a `seriously irregular mass' and replaced with an extrapolated value, which aligns with the most recent measured values from CSRe and LEBIT. As such, the smoothness of the mass surface is confidently reestablished for $^{103}$Sn. Furthermore, LEBIT's mass measurement of $^{103}$Sn enabled a significant reduction in the mass uncertainties of five parent isotopes which are now dominated by uncertainties in their respective $Q$-values.

Phase-Imaging Ion-Cyclotron-Resonance Mass Spectrometry with the Canadian Penning Trap at CARIBU

D. Ray, A. A. Valverde, M. Brodeur, F. Buchinger, J. A. Clark, B. Liu, G. E. Morgan, R. Orford [1], W. S. Porter, G. Savard [1], K. S. Sharma, X. L. Yan

Abstract

The Canadian Penning Trap mass spectrometer (CPT) has conducted precision mass measurements of neutron-rich nuclides from the CAlifornium Rare Isotope Breeder Upgrade (CARIBU) of the Argonne Tandem Linac Accelerator System (ATLAS) facility at Argonne National Laboratory using the Phase-Imaging Ion-Cyclotron-Resonance (PIICR) technique for over half a decade. Here we discuss the CPT system, and methods to improve accuracy and precision in mass measurement using PI-ICR including some optimization techniques and recently studied systematic effects.

Improved Limit on Tensor Currents in the Weak Interaction from $^8$Li $β$ Decay

M. T. Burkey [1,2,3], G. Savard [2,3], A. T. Gallant [1], N. D. Scielzo [1,3,4], T. Y. Hirsh [4,3,5], L. Varriano [2,3], G. H. Sargsyan [6], K. D. Launey [6], M. Brodeur [7], D. P. Burdette [7,3], E. Heckmaier [8,1], K. Joerres [6], J. W. Klimes [3], K. Kolos [1], A. Laminack [6], K. G. Leach [9], A. F. Levand [3], B. Longfellow [1,10,3], B. Maaß, S. T. Marley [6], G. E. Morgan [6], P. Mueller [3], R. Orford [3,11], S. W. Padgett [1,3], A. Pérez Galván, J. R. Pierce [2,3], D. Ray [4,3], R. Segel [12], K. Siegl [7], K. S. Sharma [4], B. S. Wang [1]

Abstract

The electroweak interaction in the Standard Model (SM) is described by a pure vector-axial-vector structure, though any Lorentz-invariant component could contribute. In this work, we present the most precise measurement of tensor currents in the low-energy regime by examining the $β$-$\barν$ correlation of trapped $^{8}$Li ions with the Beta-decay Paul Trap. We find $a_{βν} = -0.3325 \pm 0.0013_{stat} \pm 0.0019_{syst}$ at $1σ$ for the case of coupling to right-handed neutrinos $(C_T=-C_T')$, which is consistent with the SM prediction.

Ground-state and decay properties of neutron-rich 106Nb

A. J. Mitchell [1], R. Orford [2,3], G. J. Lane [1], C. J. Lister [4], P. Copp [4], J. A. Clark [3], G. Savard [3,5], J. M. Allmond [6], A. D. Ayangeakaa [7,8], S. Bottoni [3], M. P. Carpenter [3], P. Chowdhury [4], D. A. Gorelov [3,9], R. V. F. Janssens [7,8], F. G. Kondev [3], U. Patel [1], D. Seweryniak [3], M. L. Smith [1], Y. Y. Zhong [1], S. Zhu [3]

Abstract

The ground-state properties of neutron-rich 106Nb and its beta decay into 106Mo have been studied using the CARIBU radioactive-ion-beam facility at Argonne National Laboratory. Niobium-106 ions were extracted from a 252Cf fission source and mass separated before being delivered as low-energy beams to the Canadian Penning Trap, as well as the X-Array and SATURN beta-decay-spectroscopy station. The measured 106Nb ground-state mass excess of -66202.0(13) keV is consistent with a recent measurement but has three times better precision; this work also rules out the existence of a second long-lived, beta-decaying state in 106Nb above 5 keV in excitation energy. The decay half-life of 106Nb was measured to be 1.097(21) s, which is 8% longer than the adopted value. The level scheme of the decay progeny, 106Mo, has been expanded up to approximately 4 MeV. The distribution of decay strength and considerable population of excited states in 106Mo of J >= 3 emphasises the need to revise the adopted Jpi = 1- ground-state spin-parity assignment of 106Nb; it is more likely to be J => 3.

Beta-delayed-neutron studies of $^{135,136}$Sb and $^{140}$I performed with trapped ions

B. S. Alan [1,2], S. A. Caldwell [3,4], N. D. Scielzo [1], A. Czeszumska [2], J. A. Clark [4,5], G. Savard [4,3], A. Aprahamian [6], M. T. Burkey [3,4], C. J. Chiara [4,7], J. Harker [4,7], A. F. Levand [4], S. T. Marley [8,6], G. E. Morgan [5,4], J. M. Munson [2], E. B. Norman [2], A. Nystrom [6,4], R. Orford [9,4], S. W. Padgett [1,4,10], A. Perez Galvan, K. S. Sharma [5], K. Siegl [6], S. Y. Strauss [6]

Abstract

Beta-delayed-neutron ($β$n) spectroscopy was performed using the Beta-decay Paul Trap and an array of radiation detectors. The $β$n branching ratios and energy spectra for $^{135,136}$Sb and $^{140}$I were obtained by measuring the time of flight of recoil ions emerging from the trapped ion cloud. These nuclei are located at the edge of an isotopic region identified as having $β$n branching ratios that impact the r-process abundance pattern around the A~130 peak. For $^{135,136}$Sb and $^{140}$I, $β$n branching ratios of 14.6(11)%, 17.6(28)%, and 7.6(28)% were determined, respectively. The $β$n energy spectra obtained for $^{135}$Sb and $^{140}$I are compared with results from direct neutron measurements, and the $β$n energy spectrum for $^{136}$Sb has been measured for the first time.