During the slow neutron capture process in massive stars, reactions on light elements can both produce and absorb neutrons thereby influencing the final heavy element abundances. At low metallicities, the high neutron capture rate of $^{16}$O can inhibit s-process nucleosynthesis unless the neutrons are recycled via the $^{17}$O(α,n)$^{20}$Ne reaction. The efficiency of this neutron recycling is determined by competition between the $^{17}$O(α,n)$^{20}$Ne and $^{17}$O(α,γ)$^{21}$Ne reactions. While some experimental data are available on the former reaction, no data exist for the radiative capture channel at the relevant astrophysical energies.The $^{17}$O(α,γ)$^{21}$Ne reaction has been studied directly using the DRAGON recoil separator at...
Neutron capture reactions in stars are responsible for forming about 99% of the elemental abundances...
One of the main neutron sources for the astrophysical s process is the reaction 13C(α,n)16O, taking ...
Most of the nuclei in the mass range 90 ≲ A ≲ 208 are produced through the so-called s-process, name...
During the slow neutron capture process in massive stars, reactions on light elements can both produ...
© 2019 The Authors During the slow neutron capture process in massive stars, reactions on light elem...
The efficiency of the slow neutron-capture process in massive stars is strongly influenced by neutro...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Heavy element production in the Universe is dependent upon α capture reactions. Their measurement ca...
The ratio of the reaction rates of the competing channels 17 O(αγ) 21 Ne and 17 O(α,n) 20 Ne determi...
Background: The ratio between the rates of the reactions 17O ( α , n ) 20Ne and 17O ( α , γ ) 21Ne d...
The slow neutron capture process (s-process) is responsible for producing about half of the elementa...
Neutron reactions are responsible for the formation of the elements heavier than iron. The correspon...
One of the main neutron sources for the astrophysical s process is the reaction C13(α,n)O16, taking ...
Neutron capture reactions in stars are responsible for forming about 99% of the elemental abundances...
One of the main neutron sources for the astrophysical s process is the reaction 13C(α,n)16O, taking ...
Most of the nuclei in the mass range 90 ≲ A ≲ 208 are produced through the so-called s-process, name...
During the slow neutron capture process in massive stars, reactions on light elements can both produ...
© 2019 The Authors During the slow neutron capture process in massive stars, reactions on light elem...
The efficiency of the slow neutron-capture process in massive stars is strongly influenced by neutro...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Massive stars are crucial to galactic chemical evolution for elements heavier than iron. Their contr...
Heavy element production in the Universe is dependent upon α capture reactions. Their measurement ca...
The ratio of the reaction rates of the competing channels 17 O(αγ) 21 Ne and 17 O(α,n) 20 Ne determi...
Background: The ratio between the rates of the reactions 17O ( α , n ) 20Ne and 17O ( α , γ ) 21Ne d...
The slow neutron capture process (s-process) is responsible for producing about half of the elementa...
Neutron reactions are responsible for the formation of the elements heavier than iron. The correspon...
One of the main neutron sources for the astrophysical s process is the reaction C13(α,n)O16, taking ...
Neutron capture reactions in stars are responsible for forming about 99% of the elemental abundances...
One of the main neutron sources for the astrophysical s process is the reaction 13C(α,n)16O, taking ...
Most of the nuclei in the mass range 90 ≲ A ≲ 208 are produced through the so-called s-process, name...