A. Aprahamian

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 $A\approx165$.

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.

TOF-Brho Mass Measurements of Very Exotic Nuclides for Astrophysical Calculations at the NSCL

M Matos, A Estrade [1,2,3], M Amthor [1,2,3], A Aprahamian [2,4], D Bazin [1], A Becerril [1,2,3], T Elliot [1,2,3], D Galaviz [1,2], A Gade [1,3], S Gupta [7], G Lorusso [1,2,3], F Montes [1,2], J Pereira [1,2], M Portillo [1], A M Rogers [1,2,3], H Schatz [1,2,3], D Shapira, E Smith [2,6], A Stolz [1], M Wallace [7]

Abstract

Atomic masses play a crucial role in many nuclear astrophysics calculations. The lack of experimental values for relevant exotic nuclides triggered a rapid development of new mass measurement devices around the world. The Time-of-Flight (TOF) mass measurements offer a complementary technique to the most precise one, Penning trap measurements, the latter being limited by the rate and half-lives of the ions of interest. The NSCL facility provides a well-suited infrastructure for TOF mass measurements of very exotic nuclei. At this facility, we have recently implemented a TOF-Brho technique and performed mass measurements of neutron-rich nuclides in the Fe region, important for r-process calculations and for calculations of processes occurring in the crust of accreting neutron stars.