International audienceThe lighter heavy elements of the first r-process peak, between strontium and silver, can be synthesized in the moderately neutron-rich neutrino–driven ejecta of either core–collapse supernovae or neutron star mergers via the weak r–process. This nucleosynthesis scenario exhibits uncertainties from the absence of experimental data from (α, xn) reactions on neutron–rich nuclei, which are currently based on statistical model estimates. We have performed a new impact study to identify the most important (α, xn) reactions that can affect the production of the lighter heavy elements under different astrophysical conditions and using new, constrained (α, xn) reaction rates based on the Atomki-V2 αOMP. We have identified a li...
The production of heavy-mass elements due to the rapid neutron-capture mechanism (r-process) is asso...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Neutrino-driven winds following core-collapse supernova explosions are an exciting astrophysical sit...
The lighter heavy elements of the first r-process peak, between strontium and silver, can be synthes...
“Light” heavy elements (Z = 38 − 47) can be synthesized in the neutrino–driven ejecta of core–collap...
A promising astrophysical site to produce the lighter heavy elements of the first r-process peak (Z ...
The r-process has been shown to be robust in reproducing the abundance distributions of heavy elemen...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
The rapid neutron capture nucleosynthesis (r-process) is responsible for producing about half of the...
Rapid neutron capture in stellar explosions is responsible for the heaviest elements in nature, up t...
In rapid neutron capture, or r-process, nucleosynthesis, heavy elements are built up via a sequence ...
The rapid-neutron capture process (r process) is identified as the producer of about 50% of elements...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
We review recent work examining the influence of fission in rapid neutron capture (r-process) nucleo...
We explore the effects of nuclear masses on the temperature and neutron density conditions required ...
The production of heavy-mass elements due to the rapid neutron-capture mechanism (r-process) is asso...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Neutrino-driven winds following core-collapse supernova explosions are an exciting astrophysical sit...
The lighter heavy elements of the first r-process peak, between strontium and silver, can be synthes...
“Light” heavy elements (Z = 38 − 47) can be synthesized in the neutrino–driven ejecta of core–collap...
A promising astrophysical site to produce the lighter heavy elements of the first r-process peak (Z ...
The r-process has been shown to be robust in reproducing the abundance distributions of heavy elemen...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
The rapid neutron capture nucleosynthesis (r-process) is responsible for producing about half of the...
Rapid neutron capture in stellar explosions is responsible for the heaviest elements in nature, up t...
In rapid neutron capture, or r-process, nucleosynthesis, heavy elements are built up via a sequence ...
The rapid-neutron capture process (r process) is identified as the producer of about 50% of elements...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
We review recent work examining the influence of fission in rapid neutron capture (r-process) nucleo...
We explore the effects of nuclear masses on the temperature and neutron density conditions required ...
The production of heavy-mass elements due to the rapid neutron-capture mechanism (r-process) is asso...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Neutrino-driven winds following core-collapse supernova explosions are an exciting astrophysical sit...