Improved precision on the experimental E0 decay branching ratio of the Hoyle state
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Eriksen, Tomas Kvalheim
Kibedi, Tibor
Reed, Matthew
Stuchbery, Andrew
Cook, Kimberley
Akber, Aqeel
Alshahrani, Badriah
Avaa, Abraham A.
Banerjee, Kaushik
Berriman, Annette
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American Physical Society
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Background: Stellar carbon synthesis occurs exclusively via the 3α process, in which three α particles fuse to form 12C in the excited Hoyle state, followed by electromagnetic decay to the ground state. The Hoyle state is above the α threshold, and the rate of stellar carbon production depends on the radiative width of this state. The radiative width cannot be measured directly, and must instead be deduced by combining three separately measured quantities. One of these quantities is the E0 decay branching ratio of the Hoyle state, and the current 10% uncertainty on the radiative width stems mainly from the uncertainty on this ratio. The rate of the 3α process is an important input parameter in astrophysical calculations on stellar evolution, and a high precision is imperative to constrain the possible outcomes of astrophysical models.
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Physical Review C: Nuclear Physics
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