Neutron stars are amongst the most compact and exotic objects in the universe. When born in pairs, their eventual merging is responsible for some of the most energetic phenomena and plays a significant role in the chemical evolution of galaxies. This thesis combines analytical calculations with observations of stellar abundances to gain further insight into how these binaries are formed and the nucleosynthesis that takes place once they eventually merge under the influence of gravitational radiation.We derive a relation between key parameters governing the process of bringing neutron stars to separations at which they are able to merge within a Hubble time. We also examine the conditions at the onset of a stellar merger through detailed ste...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...
Rapid neutron capture in stellar explosions is responsible for the heaviest elements in nature, up t...
Recent studies suggest that binary neutron star (NS–NS) mergers robustly produce heavy r-process nuc...
Neutron stars are amongst the most compact and exotic objects in the universe. When born in pairs, t...
The first neutron star (NS) merger observed by advanced LIGO and Virgo, GW170817, and its fireworks ...
Abstract Neutron star mergers (NSMs) are promising astrophysical sites for the rapid...
The existence of neutron star mergers has been supported since the discovery of the binary pulsar an...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
Although the rapid neutron-capture process, or r-process, is fundamentally important for explaining ...
Probing the origin of r-process elements in the universe represents a multidisciplinary challenge. W...
11siProbing the origin of r-process elements in the universe represents a multidisciplinary challeng...
The merger of two neutron stars or of a neutron star and a black hole often result in the ejection o...
The rapid neutron capture process (r-process) is believed to be responsible for about half of the pr...
Star-to-star dispersion of r-process elements has been observed in a significant number of old, meta...
The rapid neutron-capture process, or r-process, is known to be of fundamental importance for explai...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...
Rapid neutron capture in stellar explosions is responsible for the heaviest elements in nature, up t...
Recent studies suggest that binary neutron star (NS–NS) mergers robustly produce heavy r-process nuc...
Neutron stars are amongst the most compact and exotic objects in the universe. When born in pairs, t...
The first neutron star (NS) merger observed by advanced LIGO and Virgo, GW170817, and its fireworks ...
Abstract Neutron star mergers (NSMs) are promising astrophysical sites for the rapid...
The existence of neutron star mergers has been supported since the discovery of the binary pulsar an...
The origin of the heaviest elements in our Universe is an unresolved mystery. We know that half of t...
Although the rapid neutron-capture process, or r-process, is fundamentally important for explaining ...
Probing the origin of r-process elements in the universe represents a multidisciplinary challenge. W...
11siProbing the origin of r-process elements in the universe represents a multidisciplinary challeng...
The merger of two neutron stars or of a neutron star and a black hole often result in the ejection o...
The rapid neutron capture process (r-process) is believed to be responsible for about half of the pr...
Star-to-star dispersion of r-process elements has been observed in a significant number of old, meta...
The rapid neutron-capture process, or r-process, is known to be of fundamental importance for explai...
The production of super-heavy transuranium elements by stellar nucleosynthesis processes remains an ...
Rapid neutron capture in stellar explosions is responsible for the heaviest elements in nature, up t...
Recent studies suggest that binary neutron star (NS–NS) mergers robustly produce heavy r-process nuc...