Direct low-energy measurement of the <sup>25</sup>Mg(α,n)<sup>28</sup>Si reaction via neutron spectroscopy
ORAL
Abstract
During core helium burning in massive stars, neutrons are produced mainly by the 22Ne(α,n)25Mg reaction. These neutrons are then captured onto heavy seed nuclei, resulting in the slow production of many of the elements between masses 60 < A < 90. One of the main challenges in modeling this weak s-process nucleosynthesis is determining the overall neutron flux.
This requires constraining the reaction rate of the primary as well as the secondary neutron sources. The 25Mg nuclei produced from the 22Ne(α,n)25Mg reaction affect the neutron flux through the 25Mg(α,n)28Si reaction, which serves as an additional neutron source for the weak s-process in massive stars. Past attempts to measure the 25Mg(α,n)28Si reaction using neutron counters have been greatly hindered by low Z-background reactions. In the present work, neutron spectroscopy has been accomplished using deuterated liquid scintillator detectors combined with spectrum unfolding to make an improved measurement of the 25Mg(α,n)28Si reaction at low energies. Measurements of the cross-section have been performed down to Eα =1.5 MeV with an unprecedented level of background rejection. In addition, the separation of the different background contributions gives further insight into the results of previous counter measurements.
This requires constraining the reaction rate of the primary as well as the secondary neutron sources. The 25Mg nuclei produced from the 22Ne(α,n)25Mg reaction affect the neutron flux through the 25Mg(α,n)28Si reaction, which serves as an additional neutron source for the weak s-process in massive stars. Past attempts to measure the 25Mg(α,n)28Si reaction using neutron counters have been greatly hindered by low Z-background reactions. In the present work, neutron spectroscopy has been accomplished using deuterated liquid scintillator detectors combined with spectrum unfolding to make an improved measurement of the 25Mg(α,n)28Si reaction at low energies. Measurements of the cross-section have been performed down to Eα =1.5 MeV with an unprecedented level of background rejection. In addition, the separation of the different background contributions gives further insight into the results of previous counter measurements.
*This research utilized resources from the Notre Dame Center for Research Computing and was supported by the National Science Foundation through Grant No. Phys-0758100, PHY-2011890 and PHY-2310059 (University of Notre Dame Nuclear Science Laboratory), the Joint Institute for Nuclear Astrophysics through Grant No. Phys-0822648, and PHY-1430152 (JINA Center for the Evolution of the Elements). This material is based upon work supported by the U.S. Department of Energy, Office of Science, Office of Nuclear Physics, under Award Number DE-AC05-00OR22725.
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Publication: 1. Low energy measurement of the 25Mg(α,n)28Si reaction via neutron spectroscopy
Presenters
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. Shahina
- Cyclotron Institute, Texas A&M University