Andrea Raggio

High-precision mass measurements of neutron deficient silver isotopes probe the robustness of the $N$ = 50 shell closure

Zhuang Ge [1,2], Mikael Reponen [1], Tommi Eronen [1], Baishan Hu [3,4,5], Markus Kortelainen [1], Anu Kankainen [1], Iain Moore [1], Dmitrii Nesterenko [1], Cenxi Yuan [6], Olga Beliuskina [1], Laetitia Cañete, Ruben de Groote [1,7], Celement Delafosse [1,8], Pierre Delahaye [9], Timo Dickel [2,10], Antoine de Roubin [1], Sarina Geldhof [1,9], Wouter Gins [1], Jason Holt [3,11], Marjut Hukkanen [1,12], Arthur Jaries [1], Ari Jokinen [1,7,13,14,10], Ã\udc81gota Koszorús, Gabriella Kripkó-Koncz, Sonja Kujanpää, Yihua Lam [15,16], Stylianos Nikas [1], Alejandro Ortiz-Cortes [1,9], Heikki Penttilä, Daniel Pitman-Weymouth [1,2,10], Wolfgang Plaß, Ilkka Pohjalainen [1], Andrea Raggio [1], Sami Rinta-Antila [1], Jorge Romero [1,13], Marek Stryjczyk [1], Markus Vilen [1,14], Ville Virtanen [1], Alexandra Zadvornaya [1]

Abstract

High-precision mass measurements of exotic $^{95-97}$Ag isotopes close to the $N = Z$ line have been conducted with the JYFLTRAP double Penning trap mass spectrometer, with the silver ions produced using the recently commissioned inductively-heated hot cavity catcher laser ion source at the Ion Guide Isotope Separator On-Line facility. The atomic mass of $^{95}$Ag was directly determined for the first time. In addition, the atomic masses of $β$-decaying 2$^+$ and 8$^+$ states in $^{96}$Ag have been identified and measured for the first time, and the precision of the $^{97}$Ag mass has been improved. The newly measured masses, with a precision of $\approx$ 1 keV/c$^2$, have been used to investigate the $N =$ 50 neutron shell closure confirming it to be robust. Empirical shell-gap and pairing energies determined with the new ground-state mass data are compared with the state-of-the-art \textit{ab initio} calculations with various chiral effective field theory Hamiltonians. The precise determination of the excitation energy of the $^{96m}$Ag isomer in particular serves as a benchmark for \textit{ab initio} predictions of nuclear properties beyond the ground state, specifically for odd-odd nuclei situated in proximity to the proton dripline below $^{100}$Sn. In addition, density functional theory (DFT) calculations and configuration-interaction shell-model (CISM) calculations are compared with the experimental results. All theoretical approaches face challenges to reproduce the trend of nuclear ground-state properties in the silver isotopic chain across the $N =$50 neutron shell and toward the proton drip-line.

RAPTOR: a new collinear laser ionization spectroscopy and laser-radiofrequency double-resonance experiment at the IGISOL facility

Sonja Kujanpää, Andrea Raggio, Ruben de Groote, Michail Athanasakis-Kaklamanakis, Michael Block, Anita Candiello, Wouter Gins, Agota Koszorus, Iain Moore, Mikael Reponen, Jessica Warbinek

Abstract

RAPTOR, Resonance ionization spectroscopy And Purification Traps for Optimized spectRoscopy, is a new collinear resonance ionization spectroscopy device constructed at the Ion Guide Isotope Separator On-Line (IGISOL) facility at the University of Jyväskylä, Finland. By operating at beam energies of under 10 keV, the footprint of the experiment is reduced compared to more traditional collinear laser spectroscopy beamlines. In addition, RAPTOR is coupled to the JYFLTRAP Penning trap mass spectrometer, opening a window to laser-assisted nuclear-state selective purification, serving not only the mass measurement program, but also supporting post-trap decay spectroscopy experiments. Finally, the low-energy ion beams used for RAPTOR will enable high-precision laser-radiofrequency double-resonance experiments, resulting in spectroscopy with linewidths below 1 MHz. In this contribution, the technical layout of RAPTOR and a selection of ion-beam optical simulations for the device are presented, along with a discussion of the current status of the commissioning experiments.