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Approaching the precursor nuclei of the third r-process peak with RIBs

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arxiv 1309.3047 v2 pith:LL3AJJGC submitted 2013-09-12 nucl-ex

Approaching the precursor nuclei of the third r-process peak with RIBs

classification nucl-ex
keywords processneutroncalculationsnucleiabundancebranchingexperimentalhalf-lives
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The rapid neutron nucleosynthesis process involves an enormous amount of very exotic neutron-rich nuclei, which represent a theoretical and experimental challenge. Two of the main decay properties that affect the final abundance distribution the most are half-lives and neutron branching ratios. Using fragmentation of a primary $^{238}$U beam at GSI we were able to measure such properties for several neutron-rich nuclei from $^{208}$Hg to $^{218}$Pb. This contribution provides a short update on the status of the data analysis of this experiment, together with a compilation of the latest results published in this mass region, both experimental and theoretical. The impact of the uncertainties connected with the beta-decay rates and with beta-delayed neutron emission is illustrated on the basis of $r$-process network calculations. In order to obtain a reasonable reproduction of the third $r$-process peak, it is expected that both half-lives and neutron branching ratios are substantially smaller, than those based on FRDM+QRPA, commonly used in $r$-process model calculations. Further measurements around $N\sim126$ are required for a reliable modelling of the underlying nuclear structure, and for performing more realistic $r$-process abundance calculations.

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