The astrophysical sites where r-process elements are synthesized remain mysterious: it is clear that neutron star mergers (kilonovae (KNe)) contribute, and some classes of core-collapse supernovae (SNe) are also possible sources of at least the lighter r-process species. The discovery of $^{60}$Fe on the Earth and Moon implies that one or more astrophysical explosions have occurred near the Earth within the last few million years, probably SNe. Intriguingly, $^{244}$Pu has now been detected, mostly overlapping with $^{60}$Fe pulses. However, the $^{244}$Pu flux may extend to before 12 Myr ago, pointing to a different origin. Motivated by these observations and difficulties for r-process nucleosynthesis in SN models, we propose that ejecta f...
About half of the heavy elements in our Universe are synthesized by one process, the rapid neutron c...
Half of the heavy elements including all actinides are produced in r-process nucleosynthesis, whose ...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...
The astrophysical sites where r-process elements are synthesized remain mysterious: it is clear that...
244Pu has recently been discovered in deep-sea deposits spanning the past 10 Myr, a period that incl...
Half of the chemical elements heavier than iron are produced by the rapid neutron capture process (r...
244Pu has recently been discovered in deep-sea deposits spanning the past 10 Myr, a period that incl...
Radioactive energies from unstable nuclei made in the ejecta of neutron star mergers play principal ...
The rapid neutron capture nucleosynthesis (r-process) is responsible for producing about half of the...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
The abundances of 92Nb and 146Sm in the early solar system are determined from meteoritic analysis, ...
We present the status of nucleosynthesis beyond Sr, using up-to-date nuclear inputs for both the slo...
Meteoritic analysis demonstrates that radioactive nuclei heavier than iron were present in the early...
The Early Solar System (ESS) abundance of short-lived radionuclides (SLR) can be interpreted in term...
About half of the heavy elements in our Universe are synthesized by one process, the rapid neutron c...
Half of the heavy elements including all actinides are produced in r-process nucleosynthesis, whose ...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...
The astrophysical sites where r-process elements are synthesized remain mysterious: it is clear that...
244Pu has recently been discovered in deep-sea deposits spanning the past 10 Myr, a period that incl...
Half of the chemical elements heavier than iron are produced by the rapid neutron capture process (r...
244Pu has recently been discovered in deep-sea deposits spanning the past 10 Myr, a period that incl...
Radioactive energies from unstable nuclei made in the ejecta of neutron star mergers play principal ...
The rapid neutron capture nucleosynthesis (r-process) is responsible for producing about half of the...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
The abundances of 92Nb and 146Sm in the early solar system are determined from meteoritic analysis, ...
We present the status of nucleosynthesis beyond Sr, using up-to-date nuclear inputs for both the slo...
Meteoritic analysis demonstrates that radioactive nuclei heavier than iron were present in the early...
The Early Solar System (ESS) abundance of short-lived radionuclides (SLR) can be interpreted in term...
About half of the heavy elements in our Universe are synthesized by one process, the rapid neutron c...
Half of the heavy elements including all actinides are produced in r-process nucleosynthesis, whose ...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...