English

Successful $\nu p$-process in neutrino-driven outflows in core-collapse supernovae

High Energy Astrophysical Phenomena 2025-02-10 v2 Solar and Stellar Astrophysics High Energy Physics - Phenomenology Nuclear Theory

Abstract

The origin of the solar system abundances of several proton-rich isotopes, especially 92,94^{92,94}Mo and 96,98^{96,98}Ru, has been an enduring mystery in nuclear astrophysics. An attractive proposal to solve this problem is the νp\nu p-process, which can operate in neutrino-driven outflows in a core-collapse supernova after the shock is launched. Years of detailed studies, however, have cast doubt over the ability of this process to generate sufficiently high absolute and relative amounts of various pp-nuclei. The νp\nu p-process is also thought to be excluded by arguments based on the long-lived radionuclide 92^{92}Nb.Here, we present explicit calculations, in which both the abundance ratios and the absolute yields of the pp-nuclei up to A105A\lesssim 105 are successfully reproduced, even when using the modern (medium enhanced) triple-α\alpha reaction rates. The process is also shown to produce the necessary amounts of 92^{92}Nb. The models are characterized by subsonic outflows and by the protoneutron star masses in the 1.7M\gtrsim 1.7 M_\odot range. This suggests that the Mo and Ru pp-nuclides observed in the Solar System were made in CCSN explosions characterized by an extended accretion stage.

Keywords

Cite

@article{arxiv.2312.03208,
  title  = {Successful $\nu p$-process in neutrino-driven outflows in core-collapse supernovae},
  author = {Alexander Friedland and Payel Mukhopadhyay and Amol V. Patwardhan},
  journal= {arXiv preprint arXiv:2312.03208},
  year   = {2025}
}

Comments

22 pages, 8 figures. Clarifications and figures added, results unchanged. Updated to match the journal version