paper

Precision mass measurements around Mo rule out ZrNb cycle formation in the rapid proton-capture process at type I X-ray bursts

arXiv:2504.12639

Abstract

The rapid proton-capture (-) process is one of the primary, explosive thermonuclear burning processes that drive type I X-ray bursts. A possible termination of the -process at around Mo was previously suggested by the formation of a ZrNb cycle. We report here precision mass measurements at around Mo, which have concluded the possibility of the cycle. The experiment was conducted using the multi-reflection time-of-flight spectrograph at RIKEN RI Beam Factory, and the masses of Y, Nb, Mo, Ru, and an isomer in Y were measured. For Mo, and Ru, and the isomeric state of Y, their masses are experimentally determined for the first time with uncertainties of . The mass precision of Y and Nb is improved to and , respectively. The new -separation energy of Mo, 1.434(83) MeV, unambiguously rules out the possibility of forming the ZrNb cycle. The X-ray burst simulation with the new masses shows that our measurements effectively remove the large final abundance uncertainties in the mass region. The new mass values improve the prediction power for the composition of the nuclear ashes in X-ray bursts.

7 pages, 4 figures, 1 table

Precision mass measurements around ${}^{84}$Mo rule out ZrNb cycle formation in the rapid proton-capture process at type I X-ray bursts · wovepaper