The impact of the new measurement of the fusion cross section on the final compactness of the massive stars
arXiv:2106.00013 · doi:10.3847/1538-4357/ac06ca
Abstract
We discuss how the new measurement of the fusion cross section carried out with the Trojan Horse Method (Tumino, A., Spitaleri, C., La Cognata, M., et al., 2018, Nature 57, 687) affects the compactness of a star, i.e. basically the binding energy of the inner mantle, at the onset of the core collapse. In particular, we find that this new cross section significantly changes the dependence of the compactness on the initial mass with respect to previous findings obtained in Chieffi & Limongi 2020 (ApJ 890, 43) by adopting the classical cross section provided by Caughlan, G.R., and Fowler, W.D. 1988 (At. Data Nucl. Data Tables 40, 283). A non monotonic but well defined behavior is confirmed also in this case and no scatter of the compactness around the main trend is found. Such an occurrence could impact the possible explodability of the stars.
References in corpus (7)
- Study of the 12C+12C fusion reactions near the Gamow energy
- Neutron star kicks by the gravitational tug-boat mechanism in asymmetric supernova explosions: progenitor and explosion dependence
- The Progenitor Dependence of the Preexplosion Neutrino Emission in Core-Collapse Supernovae
- The 12C + 12C reaction and the impact on nucleosynthesis in massive stars
- New measurement of C+C fusion reaction at astrophysical energies
- The presupernova core mass-radius relation of massive stars: understanding its formation and evolution
- Calculation of the 12C+12C sub-barrier fusion cross section in an imaginary time-dependent mean field theory
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